US20060115687A1 - Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same and magnetic recording medium using the same - Google Patents

Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same and magnetic recording medium using the same Download PDF

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US20060115687A1
US20060115687A1 US11/268,491 US26849105A US2006115687A1 US 20060115687 A1 US20060115687 A1 US 20060115687A1 US 26849105 A US26849105 A US 26849105A US 2006115687 A1 US2006115687 A1 US 2006115687A1
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electron
polyurethane resin
magnetic recording
beam curable
resin
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US11/268,491
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Hideki Sasaki
Hiroyuki Yamada
Kenichi Kitamura
Kazushi Tanaka
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TDK Corp
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TDK Corp
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    • CCHEMISTRY; METALLURGY
    • C09DYES; PAINTS; POLISHES; NATURAL RESINS; ADHESIVES; COMPOSITIONS NOT OTHERWISE PROVIDED FOR; APPLICATIONS OF MATERIALS NOT OTHERWISE PROVIDED FOR
    • C09DCOATING COMPOSITIONS, e.g. PAINTS, VARNISHES OR LACQUERS; FILLING PASTES; CHEMICAL PAINT OR INK REMOVERS; INKS; CORRECTING FLUIDS; WOODSTAINS; PASTES OR SOLIDS FOR COLOURING OR PRINTING; USE OF MATERIALS THEREFOR
    • C09D175/00Coating compositions based on polyureas or polyurethanes; Coating compositions based on derivatives of such polymers
    • C09D175/04Polyurethanes
    • C09D175/14Polyurethanes having carbon-to-carbon unsaturated bonds
    • C09D175/16Polyurethanes having carbon-to-carbon unsaturated bonds having terminal carbon-to-carbon unsaturated bonds
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08GMACROMOLECULAR COMPOUNDS OBTAINED OTHERWISE THAN BY REACTIONS ONLY INVOLVING UNSATURATED CARBON-TO-CARBON BONDS
    • C08G18/00Polymeric products of isocyanates or isothiocyanates
    • C08G18/06Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen
    • C08G18/70Polymeric products of isocyanates or isothiocyanates with compounds having active hydrogen characterised by the isocyanates or isothiocyanates used
    • C08G18/81Unsaturated isocyanates or isothiocyanates
    • C08G18/8141Unsaturated isocyanates or isothiocyanates masked
    • C08G18/815Polyisocyanates or polyisothiocyanates masked with unsaturated compounds having active hydrogen
    • C08G18/8158Polyisocyanates or polyisothiocyanates masked with unsaturated compounds having active hydrogen with unsaturated compounds having only one group containing active hydrogen
    • C08G18/8175Polyisocyanates or polyisothiocyanates masked with unsaturated compounds having active hydrogen with unsaturated compounds having only one group containing active hydrogen with esters of acrylic or alkylacrylic acid having only one group containing active hydrogen
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10STECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10S428/00Stock material or miscellaneous articles
    • Y10S428/90Magnetic feature
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T428/00Stock material or miscellaneous articles
    • Y10T428/31504Composite [nonstructural laminate]
    • Y10T428/31551Of polyamidoester [polyurethane, polyisocyanate, polycarbamate, etc.]

Definitions

  • the present invention relates to an electron-beam curable polyurethane resin for magnetic recording media (hereinafter referred to as an electron-beam curable resin in some cases), to a method for producing the same, and to a magnetic recording medium using the same. More specifically, the present invention relates to an electron-beam curable polyurethane resin having excellent crosslinking characteristics and which is suitably used for magnetic recording media, to a method for producing the electron-beam curable polyurethane resin having excellent crosslinking characteristics by electron-beam sensitive modification of a common thermosetting polyurethane resin, and to a magnetic recording medium using the electron-beam curable polyurethane resin.
  • Resins conventionally used for magnetic recording media typically include thermosetting resins and electron-beam curable resins.
  • the thermosetting resins are cured by allowing active hydrogen in the resins, which is typically the hydroxy group, to react with an isocyanate compound to form crosslinks in the resins.
  • the electron-beam curable resins are cured by introducing an electron-beam sensitive functional group, which is typically the acrylic double bond, and exposing the resins to an electron beam to form crosslinks.
  • vinyl chloride resins and polyurethane resins are used as the electron-beam curable resins for magnetic recording media.
  • the hydroxy group of a thermosetting vinyl chloride resin having a hydroxy group may be allowed to react with a tolylene diisocyanate (TDI) adduct produced by a reaction between TDI and 2-hydroxyethyl methacrylate (2-HEMA) (disclosed in Japanese Examined Patent Application Publication No. 1-25141), allowed to react with a cyclic anhydride and further react with an epoxy monomer having an acrylic double bond (disclosed in Japanese Patent No. 2514682), or allowed to react with 2-isocyanateethyl(meth)acrylate (MOI) (disclosed in Japanese Unexamined Patent Application Publication NO. 4-67314).
  • TDI tolylene diisocyanate
  • 2-HEMA 2-hydroxyethyl methacrylate
  • MOI 2-isocyanateethyl(meth)acrylate
  • a (meth)acrylate compound having a hydroxy group in the molecule thereof may be used as part of the material for synthesizing polyurethane to produce a radiation curable polyurethane resin (disclosed in Japanese Patent No. 2610468), or a polyurethane whose polymer end is a isocyanate group may be prepared and subsequently allowed to react with an alcohol having an acrylic double bond (disclosed in Japanese Examined Patent Application Publication No. 3-1727).
  • the electron-beam curable polyurethane resins if an acrylic double bond can be introduced to the active hydrogen, which is typically the hydroxy group, of a known thermosetting polyurethane resin, in the same manner as in the vinyl chloride resins, commercially available polyurethane resins can be modified to be electron-beam sensitive.
  • thermosetting polyurethane resin however has a smaller amount of active hydrogen in the molecule thereof than that of thermosetting vinyl chloride resins. Hence, when the modification is performed by the same technique as in the vinyl chloride resins, only a small number of acrylic double bonds can be introduced and, consequently, crosslinking of the coating film cured by electron-beam is disadvantageously insufficient.
  • an object of the present invention is to provide an electron-beam curable polyurethane resin having excellent crosslinking characteristics and which is suitably used for magnetic recording media, by electron-beam sensitive modification of a known thermosetting polyurethane resin, to provide a method for easily producing the electron-beam curable polyurethane resin having excellent crosslinking characteristics, from a known thermosetting polyurethane resin, and to provide a high-performance magnetic recording medium by using the electron-beam curable polyurethane resin.
  • an electron-beam curable polyurethane resin having excellent crosslinking characteristics can be produced by using a known polyurethane resin as the raw material and modifying it with a compound having at least two acrylic double bonds, and thus, accomplished the present invention.
  • the electron-beam curable polyurethane resin for magnetic recording media a method for producing the same, and a magnetic recording medium using the same are as follows.
  • the electron-beam curable polyurethane resin for magnetic media is produced by modifying a polyurethane resin having recording active hydrogen in the molecule thereof with a compound having at least two acrylic double bonds, wherein the modification is performed on the active hydrogen so that the polyurethane resin becomes electron-beam curable.
  • the active hydrogen of a polyurethane resin having active hydrogen in the molecule thereof is allowed to react with a compound having at least two acrylic double bonds and an isocyanate group in the molecule thereof, thereby being modified to be electron-beam curable.
  • the compound is prepared by allowing an isocyanurate to react with an alcohol having at least one acrylic double bond in the molecule thereof.
  • the magnetic recording medium comprises a non-magnetic substrate provided with a layer containing the electron-beam curable polyurethane resin for magnetic recording media described in (1).
  • the electron-beam curable polyurethane resin for magnetic recording media of the present invention is produced by electron-beam sensitive modification of a predetermined polyurethane resin, used as the raw material, using a predetermined compound (hereinafter referred to as a “modifying compound”).
  • the raw material polyurethane resin used in the present invention may be a known (general-purpose) polyurethane resin or a newly developed polyurethane resin.
  • the polyurethane resin must have active hydrogen, such as the hydroxy group, primary amine, or secondary amine, in the molecule thereof in order to carry out reaction.
  • Such polyurethane resins are not particularly limited, but include, for example, Estane 5776P, 5788P, and 5799P (produced by BF Goodrich Co.); UR8200, UR8300, and UR8700 (produced by Toyobo Co., Ltd); and N-2301, N-2304, N-3167, N-3301, N-4325, and TK501K (produced by Nippon Polyurethane Industry Co., Ltd.).
  • a compound which has both at least two acrylic double bonds and an isocyanate group in the molecule thereof.
  • This modifying compound can be prepared by, for example, allowing two of the three isocyanate groups in a hexamethylene diisocyanate (HDI) trimer (isocyanurate) to react with a compound having both a hydroxy group and an acrylic double bond so as to have two acrylic double bonds and one isocyanate group.
  • the resulting modifying compound is allowed to react with, for example, the hydroxy group of a polyurethane resin.
  • two acrylic double bonds can be introduced for one hydroxy group of the polyurethane resin.
  • the isocyanurate is not particularly limited, and other isocyanurates, such as of tolylene diisocyanate (TDI) and isophorone diisocyanate (IPDI) may be used instead of HDI.
  • the compound allowed to react with the isocyanurate nurato, having both a hydroxy group and at least one acrylic double bond, that is, an alcohol having at least one acrylic double bond in the molecule thereof, is not particularly limited, and exemplary compounds include 2-hydroxyethyl acrylate (2-HEA), 2-hydroxyethyl methacrylate (2-HEMA), 2-hydroxypropyl acrylate, hydroxydiethylene glycol methacrylate, butoxyhydroxypropyl acrylate, phenoxyhydroxypropyl acrylate, hydroxypropyl dimethacrylate, glycerol dimethacrylate, and monohydroxypentaerythritol triacrylate.
  • 2-HEA 2-hydroxyethyl acrylate
  • 2-HEMA 2-hydroxyethyl meth
  • Synthesis of the electron-beam curable polyurethane resin is performed as described above, through a reaction of urethane formation between three compounds consisting of the isocyanurate, the alcohol having at least one acrylic double bond in the molecule thereof, and the polyurethane resin having active hydrogen.
  • the isocyanurate and the alcohol having at least one acrylic double bond in the molecule thereof are precedently allowed to react with each other to prepare the above-described modifying compound, and then the polyurethane resin having active hydrogen is allowed to react.
  • a catalyst for urethane formation such as dibutyltin dilaurate or tin octylate is preferably used in an amount of 0.005 to 0.1 part by weight relative to 100 parts by weight in total of reactants, In the synthesis.
  • the catalyst for urethane formation is not always necessary.
  • the synthesis reaction temperature is preferably 30 to 80° C., and more preferably 50 to 70° C.
  • the resulting electron-beam curable polyurethane resin can be used as a binder of a resin undercoat layer, an undercoat layer containing an inorganic pigment, a backcoat layer, and a magnetic layer, in a magnetic recording medium.
  • these layers are collectively referred to as “functional layers”.
  • the electron-beam curable polyurethane resin may be used singly or in combination with other resins such as vinyl chloride resins.
  • Crosslinking of the electron-beam curable polyurethane resin is performed with an electron-beam preferably at an exposure dose of 1 to 10 Mrad, and more preferably 3 to 7 Mrad.
  • the exposure energy (acceleration voltage) is preferably 100 kV or more.
  • a high-performance magnetic recording medium which includes highly crosslinked, highly solvent-resistant functional layers.
  • the magnetic recording medium of the present invention needs to have a layer containing the electron-beam curable polyurethane resin of the present invention on a non-magnetic substrate.
  • the other construction materials and additives are not particularly limited, and the following materials may be used.
  • the material of the non-magnetic substrate may appropriately be selected from known resin films, such as polyester, polyamide, and aromatic polyamide, and laminates of these resin films.
  • the thickness of the substrate is in a known range, and is also not particularly limited.
  • the ferromagnetic powder used for the magnetic layer is acicular ferromagnetic metallic powder having a mean long-axis length of preferably 0.15 ⁇ m or less, and more preferably 0.05 to 0.10 ⁇ m. If the mean long-axis length is more than 0.15 ⁇ m, electromagnetic conversion characteristics (particularly S/N and C/N ratios) required for magnetic recording media tend not to be satisfied.
  • a hexagonal iron oxide powder such as barium ferrite, may be used.
  • the platy ratio of the hexagonal iron oxide powder is preferably 2 to 7.
  • the mean primary plate diameter is preferably 10 to 50 nm when observed by TEM. If it is large, the surface of the magnetic layer tends to deteriorate.
  • the magnetic layer composition contains 70 to 90 percent by weight of such ferromagnetic powder.
  • An excessively high content of the ferromagnetic powder results in a low content of the binder, and consequently the surface smoothness by calendaring is liable to deteriorate.
  • an excessively low content of the ferromagnetic powder tends not to provide a high reproduction output.
  • Preferred binder resins for the magnetic layer include the electron-beam curable polyurethane resin of the present invention, known thermoplastic resins and thermosetting resins, other radiation curable resins, and their mixtures, but are not particularly limited to these. Also, a mixture of the electron-beam curable polyurethane resin of the present invention and other binder resins may be used.
  • the content of the binder resin used for the magnetic layer is 5 to 40 parts by weight relative to 100 parts by weight of the ferromagnetic powder, and a content of 10 to 30 parts by weight is particularly preferable.
  • An excessively low content of the binder resin degrades the strength of the magnetic layer and consequently the running durability tents to deteriorate.
  • an excessively high content results in a reduced content of the ferromagnetic metallic powder content, consequently degrading electromagnetic conversion characteristics.
  • Cross-linkers for curing the binder resin include known various types of polyisocyanate, and the cross-linker content is preferably 10 to 30 parts by weight relative to 100 parts by weight of the binder resin.
  • the magnetic layer may also contain an abrasive, a dispersant such as a surfactant, a higher fatty acid, and other additives, if necessary.
  • a paint for magnetic layer formation is prepared by adding an organic solvent to the above-described ingredients.
  • the organic solvent is not particularly limited, and may be at least one appropriately selected from among various solvents including ketones, such as methyl ethyl ketone (MEK), methyl isobutyl ketone, and cyclohexanone, and aromatic solvents, such as toluene.
  • the organic solvent content is about 100 to 900 parts by weight relative to 100 parts by weight in total of solids (the ferromagnetic metallic powder, various types of inorganic grains, and the like) and the binder resin.
  • the thickness of the magnetic layer, in the present invention is 0.50 ⁇ m or less, preferably 0.01 to 0.50 ⁇ m, and more preferably 0.02 to 0.30 ⁇ m. An excessively large thickness leads to an increased self-demagnetization loss and thickness loss.
  • a non-magnetic layer serving as the undercoat layer may be disposed between the magnetic layer and the non-magnetic substrate, thereby improving electromagnetic conversion characteristics of the magnetic layer having a reduced thickness. Thus, reliability is further increased.
  • the non-magnetic powder for the non-magnetic layer can be used as the non-magnetic powder for the non-magnetic layer, and preferred inorganic powders include acicular nonmagnetic powders, such as acicular non-magnetic iron oxide ( ⁇ -Fe 2 O 3 ).
  • the non-magnetic layer may further contain various types of non-magnetic powder, such as calcium carbonate (CaCO 3 ), titanium oxide (TiO 2 ), barium sulfate (BaSO4), and ⁇ -alumina ( ⁇ -Al 2 O 3 ), if necessary.
  • the nonmagnetic layer contains carbon black.
  • the carbon black may be furnace black for rubber, thermal black for rubber, black for color, acetylene black, and the like.
  • the compounding ratio of the carbon black to the inorganic powder is preferably 100:0 to 10:90 by weight. If the inorganic powder ratio is more than 90, a problem of surface electric resistance is liable to occur.
  • Exemplary binders for the nonmagnetic layer include the electron-beam curable polyurethane of the present invention, known thermoplastic resins and thermosetting resins, other radiation curable resins, and their mixtures, as In the magnetic layer, and the radiation curable resins are particularly suitable.
  • the non-magnetic layer may further contain a dispersant such as a surfactant and other additives, if necessary.
  • the paint for the non-magnetic layer may be prepared by adding the same organic solvent as in the above-described magnetic layer in a similar amount.
  • the thickness of the non-magnetic layer is preferably 2.5 ⁇ m or less, and more preferably 0.1 to 2.3 ⁇ m. Even if the thickness is increased to more than 2.5 ⁇ m, performance is not enhanced. On the contrary, strict conditions are required for coating because the thickness of the coating is liable to become nonuniform, and the surface smoothness is also liable to deteriorate.
  • the backcoat layer is intended to enhance the running stability and to prevent electrification of the magnetic layer, and is provided if required.
  • the backcoat layer contains 30 to 80 percent by weight of carbon black.
  • the carbon black any type can be used as long as it is generally used, and the same carbon black as in the above-described non-magnetic layer may be used.
  • the backcoat layer may further contain various types of non-magnetic, inorganic powder used for the magnetic layer, such as an abrasive; a dispersant such as a surfactant; a higher fatty acid; a fatty ester; a lubricant, such as silicone oil, and other various types of additives.
  • the thickness (after calendaring) of the backcoat layer is 0.1 to 1.0 ⁇ m, and preferably 0.2 to 0.8 ⁇ m. If the thickness is more than 1.0 ⁇ m, the friction between a medium-sliding path and the medium becomes excessively large, and consequently the running stability tends to deteriorate. In contrast, in the case of a thickness of less than 0.1 ⁇ m, the coating of the backcoat layer is liable to be shaved off while the medium is running.
  • an electron beam curable polyurethane resin for magnetic recording media can be produced using a known polyurethane resin having active hydrogen as the raw material.
  • the resulting electron-beam curable polyurethane resin has excellent crosslinking characteristics, and thus a high-performance recording magnetic medium can be provided.
  • estane 5778P produced by BP Goodrich Co.
  • 700 parts of methyl ethyl ketone (MEK), 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours.
  • 38 parts of the previously prepared HDI nurate-2-HEA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm ⁇ 1 ) had disappeared in the IR spectrum, and then the sample was taken out.
  • polyurethane acrylate resin (1) was obtained.
  • estane 5778P produced by BF Goodrich Co.
  • 700 parts of MEK 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours.
  • BHT 2,6-tert-butyl-4-methylphenol
  • a one litter, three-neck flask was charged with 504 parts of HDI nurate, 0.18 part of dibutyltin dilaurate, and 0.22 part of 2,6-tert-butyl-4-methylphenol, and 496 parts of monohydroxypentaerythritol triacrylate was dropped while temperature was controlled to 60° C. After dripping, the sample was stirred at 60° C. for 2 hours and taken out. Thus, HDI nurate-monohydroxypentaerythritol triacrylate adduct (modifying compound) was obtained.
  • estane 5778P produced by BF Goodrich Co.
  • 615 parts of MEK 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours.
  • 53 parts of the previously prepared HDI nurate-monohydroxypentaerythritol triacrylate adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm ⁇ 1 ) had disappeared in the IR spectrum, and then the sample was taken out.
  • polyurethane acrylate resin (3) was obtained.
  • estane 5778P produced by BF Goodrich Co.
  • 654 parts of MEK 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours.
  • BHT 2,6-tert-butyl-4-methylphenol
  • 92 parts of the previously prepared TPDT nutrate-2-HEA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm ⁇ 1 ) had disappeared in the IR spectrum, and then the sample was taken out.
  • polyurethane acrylate resin (4) was obtained.
  • TDI-2-HEMA adduct was obtained.
  • estane 5778P produced by BF Goodrich Co.
  • 560 parts of MEK 560 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 80° C. for 3 hours.
  • 14 parts of the previously prepared TDI-2-HEMA adduct was added. After stirring at 80° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm ⁇ 1 ) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (7) was obtained.
  • a coating of polyurethane acrylate resin (1) was formed to a thickness of 30 ⁇ m on a separation film, and was then exposed to an electron beam of 6 Mrad under the condition of an acceleration voltage of 200 kV to be cured. Next, the polyurethane resin coating film cured with electron beam was removed from the separation film, and the gel fraction was measure under the following conditions.
  • a magnetic metallic powder (magnetic paint), an ⁇ -iron oxide/carbon black mixture (non-magnetic paint), and a carbon black (carbon black paint) were each dispersed in polyurethane acrylate resin (1), and crosslinks were formed. Solvent resistances of these samples were evaluated to estimate crosslinking characteristics.
  • Polyurethane acrylate resin (1) 70 parts by weight MEK: 70 parts by weight Toluene: 120 parts by weight
  • Cyclohexanone 70 parts by weight
  • the resulting magnetic paint was applied on a polyethylene terephthalate (PET) film having a thickness of 6.1 ⁇ m so as to result in a dried thickness of 1.5 ⁇ m.
  • PET polyethylene terephthalate
  • calendaring was performed at a linear pressure of 2.9 ⁇ 10 5 N/m and a temperature of 90° C. and subsequently electron beam (EB) exposure (6 Mrad) was performed.
  • EB electron beam
  • Non-Magnetic Paint Sample Non-magnetic powder: acicular ⁇ -Fe 2 O 3 : 80 parts by weight (mean short-axis diameter: 18 nm, aspect ratio: 6.1, pH: 8.9) Carbon black (#850B produced by Mitsubishi 20 parts by weight Chemical Co.): (mean particle size: 16 nm, BET: 200 m 2 /g, DBP oil absorption: 70 mL/100 g) Polyurethane acrylate resin (1): 70 parts by weight MEK: 120 parts by weight Toluene: 120 parts by weight Cyclohexanone: 70 parts by weight
  • the resulting non-magnetic paint was applied on a PET film having a thickness of 6.1 ⁇ m so as to result in a dried thickness of 1.5 ⁇ m.
  • calendaring was performed at a linear pressure of 2.9 ⁇ 10 5 N/m and a temperature of 90° C. and subsequently EB exposure (6 Mrad) was performed.
  • a cured non-magnetic coating film was prepared.
  • Carbon black 100 parts by weight (Conductex SC produced by Columbian Carbon Co., mean particle size: 20 nm, BET: 220 m 2 /g) Carbon black: 1 part by weight (Sevacarb MT produced by Columbian Carbon Co., mean particle size: 350 nm, BET: 8 m 2 /g) Polyurethane acrylate resin (1): 330 parts by weight MEK: 350 parts by weight Toluene: 350 parts by weight Cyclohexanone: 170 parts by weight
  • the resulting carbon black paint was applied on a PET film having a thickness of 6.1 ⁇ m so as to result in a dried thickness of 1.5 ⁇ m.
  • calendaring was performed at a linear pressure of 2.9 ⁇ 10 5 N/m and a temperature of 70° C. and subsequently EB exposure (6 Mrad) was performed.
  • a cured carbon black coating film was prepared.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (2) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (3) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (4) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (5) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (6) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (7) was used Instead of polyurethane acrylate resin (1) used in Example 1.
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (8) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Example 1 In 700 g of MEK, 300 g of Estane 5778P produced by BF Goodrich Co. was dissolved to prepare a polyurethane resin solution. Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that this polyurethane resin solution was used instead of polyurethane acrylate resin (1) used in Example 1.
  • the polyurethane resins of the examples produced by modifying a polyurethane resin having active hydrogen with a compound having two or more of acrylic double bonds and an isocyanate group in the molecule thereof have more excellent crosslinking characteristics than those of the known polyurethane resin used in the comparative examples and can result in cured coating films having better solvent resistance to a magnetic paint, a non-magnetic paint, and a black carbon paint.

Abstract

An electron-beam curable polyurethane resin for magnetic recording media is produced by modifying a polyurethane resin having active hydrogen in the molecule thereof with a compound having at least two acrylic double bonds, wherein the modification is performed on the active hydrogen so that the polyurethane resin becomes electron-beam curable. By subjecting a known thermosetting polyurethane resin to electron-beam sensitive modification, the resulting resin is highly crosslinked and is thus capable of being suitably used for magnetic recording media. Also, an electron-beam curable polyurethane resin having excellent crosslinking characteristics can easily be produced from the known thermosetting polyurethane resin. Furthermore, by using the electron-beam curable polyurethane resin, a high-performance magnetic recording medium can be provided.

Description

    BACKGROUND OF THE INVENTION
  • 1. Field of the Invention
  • The present invention relates to an electron-beam curable polyurethane resin for magnetic recording media (hereinafter referred to as an electron-beam curable resin in some cases), to a method for producing the same, and to a magnetic recording medium using the same. More specifically, the present invention relates to an electron-beam curable polyurethane resin having excellent crosslinking characteristics and which is suitably used for magnetic recording media, to a method for producing the electron-beam curable polyurethane resin having excellent crosslinking characteristics by electron-beam sensitive modification of a common thermosetting polyurethane resin, and to a magnetic recording medium using the electron-beam curable polyurethane resin.
  • 2. Description of the Related Art
  • Resins conventionally used for magnetic recording media typically include thermosetting resins and electron-beam curable resins. The thermosetting resins are cured by allowing active hydrogen in the resins, which is typically the hydroxy group, to react with an isocyanate compound to form crosslinks in the resins. On the other hand, the electron-beam curable resins are cured by introducing an electron-beam sensitive functional group, which is typically the acrylic double bond, and exposing the resins to an electron beam to form crosslinks.
  • In general, vinyl chloride resins and polyurethane resins are used as the electron-beam curable resins for magnetic recording media. For electron-beam sensitive modification of the vinyl chloride resins, the hydroxy group of a thermosetting vinyl chloride resin having a hydroxy group may be allowed to react with a tolylene diisocyanate (TDI) adduct produced by a reaction between TDI and 2-hydroxyethyl methacrylate (2-HEMA) (disclosed in Japanese Examined Patent Application Publication No. 1-25141), allowed to react with a cyclic anhydride and further react with an epoxy monomer having an acrylic double bond (disclosed in Japanese Patent No. 2514682), or allowed to react with 2-isocyanateethyl(meth)acrylate (MOI) (disclosed in Japanese Unexamined Patent Application Publication NO. 4-67314).
  • On the other hand, in the case of using the polyurethane resins, typically, a (meth)acrylate compound having a hydroxy group in the molecule thereof may be used as part of the material for synthesizing polyurethane to produce a radiation curable polyurethane resin (disclosed in Japanese Patent No. 2610468), or a polyurethane whose polymer end is a isocyanate group may be prepared and subsequently allowed to react with an alcohol having an acrylic double bond (disclosed in Japanese Examined Patent Application Publication No. 3-1727).
  • As for the electron-beam curable polyurethane resins, if an acrylic double bond can be introduced to the active hydrogen, which is typically the hydroxy group, of a known thermosetting polyurethane resin, in the same manner as in the vinyl chloride resins, commercially available polyurethane resins can be modified to be electron-beam sensitive.
  • The thermosetting polyurethane resin however has a smaller amount of active hydrogen in the molecule thereof than that of thermosetting vinyl chloride resins. Hence, when the modification is performed by the same technique as in the vinyl chloride resins, only a small number of acrylic double bonds can be introduced and, consequently, crosslinking of the coating film cured by electron-beam is disadvantageously insufficient.
  • SUMMARY OF THE INVENTION
  • Accordingly, an object of the present invention is to provide an electron-beam curable polyurethane resin having excellent crosslinking characteristics and which is suitably used for magnetic recording media, by electron-beam sensitive modification of a known thermosetting polyurethane resin, to provide a method for easily producing the electron-beam curable polyurethane resin having excellent crosslinking characteristics, from a known thermosetting polyurethane resin, and to provide a high-performance magnetic recording medium by using the electron-beam curable polyurethane resin.
  • The inventors of the present invention have conducted intensive research to overcome the above-described challenges. Consequently, they have found that an electron-beam curable polyurethane resin having excellent crosslinking characteristics can be produced by using a known polyurethane resin as the raw material and modifying it with a compound having at least two acrylic double bonds, and thus, accomplished the present invention.
  • Specifically, the electron-beam curable polyurethane resin for magnetic recording media, a method for producing the same, and a magnetic recording medium using the same are as follows.
  • (1) The electron-beam curable polyurethane resin for magnetic media is produced by modifying a polyurethane resin having recording active hydrogen in the molecule thereof with a compound having at least two acrylic double bonds, wherein the modification is performed on the active hydrogen so that the polyurethane resin becomes electron-beam curable.
  • (2) To produce the electron-beam curable polyurethane resin for magnetic recording media described in (1), in the method for producing the electron-beam curable polyurethane resin for magnetic recording media, the active hydrogen of a polyurethane resin having active hydrogen in the molecule thereof is allowed to react with a compound having at least two acrylic double bonds and an isocyanate group in the molecule thereof, thereby being modified to be electron-beam curable.
  • (3) In the method described in (2), the compound is prepared by allowing an isocyanurate to react with an alcohol having at least one acrylic double bond in the molecule thereof.
  • (4) The magnetic recording medium comprises a non-magnetic substrate provided with a layer containing the electron-beam curable polyurethane resin for magnetic recording media described in (1).
  • DESCRIPTION OF THE PREFERRED EMBODIMENTS
  • The embodiments of the present invention will now be illustrated in detail.
  • The electron-beam curable polyurethane resin for magnetic recording media of the present invention is produced by electron-beam sensitive modification of a predetermined polyurethane resin, used as the raw material, using a predetermined compound (hereinafter referred to as a “modifying compound”).
  • The raw material polyurethane resin used in the present invention may be a known (general-purpose) polyurethane resin or a newly developed polyurethane resin. However, the polyurethane resin must have active hydrogen, such as the hydroxy group, primary amine, or secondary amine, in the molecule thereof in order to carry out reaction.
  • Such polyurethane resins are not particularly limited, but include, for example, Estane 5776P, 5788P, and 5799P (produced by BF Goodrich Co.); UR8200, UR8300, and UR8700 (produced by Toyobo Co., Ltd); and N-2301, N-2304, N-3167, N-3301, N-4325, and TK501K (produced by Nippon Polyurethane Industry Co., Ltd.).
  • As the modifying compound allowed to react with the active hydrogen of these polyurethane resins in order to carry out electron-beam sensitive modification, a compound is used which has both at least two acrylic double bonds and an isocyanate group in the molecule thereof. This modifying compound can be prepared by, for example, allowing two of the three isocyanate groups in a hexamethylene diisocyanate (HDI) trimer (isocyanurate) to react with a compound having both a hydroxy group and an acrylic double bond so as to have two acrylic double bonds and one isocyanate group. The resulting modifying compound is allowed to react with, for example, the hydroxy group of a polyurethane resin. Thus, two acrylic double bonds can be introduced for one hydroxy group of the polyurethane resin.
  • The isocyanurate is not particularly limited, and other isocyanurates, such as of tolylene diisocyanate (TDI) and isophorone diisocyanate (IPDI) may be used instead of HDI. The compound allowed to react with the isocyanurate nurato, having both a hydroxy group and at least one acrylic double bond, that is, an alcohol having at least one acrylic double bond in the molecule thereof, is not particularly limited, and exemplary compounds include 2-hydroxyethyl acrylate (2-HEA), 2-hydroxyethyl methacrylate (2-HEMA), 2-hydroxypropyl acrylate, hydroxydiethylene glycol methacrylate, butoxyhydroxypropyl acrylate, phenoxyhydroxypropyl acrylate, hydroxypropyl dimethacrylate, glycerol dimethacrylate, and monohydroxypentaerythritol triacrylate.
  • Synthesis of the electron-beam curable polyurethane resin is performed as described above, through a reaction of urethane formation between three compounds consisting of the isocyanurate, the alcohol having at least one acrylic double bond in the molecule thereof, and the polyurethane resin having active hydrogen. As for the method for the synthesis, preferably, the isocyanurate and the alcohol having at least one acrylic double bond in the molecule thereof are precedently allowed to react with each other to prepare the above-described modifying compound, and then the polyurethane resin having active hydrogen is allowed to react.
  • In general, a catalyst for urethane formation, such as dibutyltin dilaurate or tin octylate is preferably used in an amount of 0.005 to 0.1 part by weight relative to 100 parts by weight in total of reactants, In the synthesis. However, the catalyst for urethane formation is not always necessary. The synthesis reaction temperature is preferably 30 to 80° C., and more preferably 50 to 70° C.
  • The resulting electron-beam curable polyurethane resin can be used as a binder of a resin undercoat layer, an undercoat layer containing an inorganic pigment, a backcoat layer, and a magnetic layer, in a magnetic recording medium. Hereinafter, these layers are collectively referred to as “functional layers”. The electron-beam curable polyurethane resin may be used singly or in combination with other resins such as vinyl chloride resins.
  • Crosslinking of the electron-beam curable polyurethane resin is performed with an electron-beam preferably at an exposure dose of 1 to 10 Mrad, and more preferably 3 to 7 Mrad. The exposure energy (acceleration voltage) is preferably 100 kV or more.
  • In the present invention, by using the above-described electron-beam curable polyurethane resin as a binder of the functional layers, a high-performance magnetic recording medium can be obtained which includes highly crosslinked, highly solvent-resistant functional layers. The magnetic recording medium of the present invention needs to have a layer containing the electron-beam curable polyurethane resin of the present invention on a non-magnetic substrate. However, the other construction materials and additives are not particularly limited, and the following materials may be used.
  • The material of the non-magnetic substrate may appropriately be selected from known resin films, such as polyester, polyamide, and aromatic polyamide, and laminates of these resin films. The thickness of the substrate is in a known range, and is also not particularly limited.
  • The ferromagnetic powder used for the magnetic layer is acicular ferromagnetic metallic powder having a mean long-axis length of preferably 0.15 μm or less, and more preferably 0.05 to 0.10 μm. If the mean long-axis length is more than 0.15 μm, electromagnetic conversion characteristics (particularly S/N and C/N ratios) required for magnetic recording media tend not to be satisfied. Alternatively, a hexagonal iron oxide powder, such as barium ferrite, may be used. The platy ratio of the hexagonal iron oxide powder is preferably 2 to 7. Also, the mean primary plate diameter is preferably 10 to 50 nm when observed by TEM. If it is large, the surface of the magnetic layer tends to deteriorate.
  • It is sufficient that the magnetic layer composition contains 70 to 90 percent by weight of such ferromagnetic powder. An excessively high content of the ferromagnetic powder results in a low content of the binder, and consequently the surface smoothness by calendaring is liable to deteriorate. In contrast, an excessively low content of the ferromagnetic powder tends not to provide a high reproduction output.
  • Preferred binder resins for the magnetic layer include the electron-beam curable polyurethane resin of the present invention, known thermoplastic resins and thermosetting resins, other radiation curable resins, and their mixtures, but are not particularly limited to these. Also, a mixture of the electron-beam curable polyurethane resin of the present invention and other binder resins may be used.
  • The content of the binder resin used for the magnetic layer is 5 to 40 parts by weight relative to 100 parts by weight of the ferromagnetic powder, and a content of 10 to 30 parts by weight is particularly preferable. An excessively low content of the binder resin degrades the strength of the magnetic layer and consequently the running durability tents to deteriorate. In contrast, an excessively high content results in a reduced content of the ferromagnetic metallic powder content, consequently degrading electromagnetic conversion characteristics.
  • Cross-linkers for curing the binder resin include known various types of polyisocyanate, and the cross-linker content is preferably 10 to 30 parts by weight relative to 100 parts by weight of the binder resin. The magnetic layer may also contain an abrasive, a dispersant such as a surfactant, a higher fatty acid, and other additives, if necessary.
  • A paint for magnetic layer formation is prepared by adding an organic solvent to the above-described ingredients. The organic solvent is not particularly limited, and may be at least one appropriately selected from among various solvents including ketones, such as methyl ethyl ketone (MEK), methyl isobutyl ketone, and cyclohexanone, and aromatic solvents, such as toluene. The organic solvent content is about 100 to 900 parts by weight relative to 100 parts by weight in total of solids (the ferromagnetic metallic powder, various types of inorganic grains, and the like) and the binder resin.
  • The thickness of the magnetic layer, in the present invention, is 0.50 μm or less, preferably 0.01 to 0.50 μm, and more preferably 0.02 to 0.30 μm. An excessively large thickness leads to an increased self-demagnetization loss and thickness loss.
  • A non-magnetic layer serving as the undercoat layer may be disposed between the magnetic layer and the non-magnetic substrate, thereby improving electromagnetic conversion characteristics of the magnetic layer having a reduced thickness. Thus, reliability is further increased.
  • Various types of inorganic powder can be used as the non-magnetic powder for the non-magnetic layer, and preferred inorganic powders include acicular nonmagnetic powders, such as acicular non-magnetic iron oxide (α-Fe2O3). The non-magnetic layer may further contain various types of non-magnetic powder, such as calcium carbonate (CaCO3), titanium oxide (TiO2), barium sulfate (BaSO4), and α-alumina (α-Al2O3), if necessary. Preferably, the nonmagnetic layer contains carbon black. The carbon black may be furnace black for rubber, thermal black for rubber, black for color, acetylene black, and the like.
  • The compounding ratio of the carbon black to the inorganic powder is preferably 100:0 to 10:90 by weight. If the inorganic powder ratio is more than 90, a problem of surface electric resistance is liable to occur.
  • Exemplary binders for the nonmagnetic layer include the electron-beam curable polyurethane of the present invention, known thermoplastic resins and thermosetting resins, other radiation curable resins, and their mixtures, as In the magnetic layer, and the radiation curable resins are particularly suitable.
  • The non-magnetic layer may further contain a dispersant such as a surfactant and other additives, if necessary. The paint for the non-magnetic layer may be prepared by adding the same organic solvent as in the above-described magnetic layer in a similar amount.
  • The thickness of the non-magnetic layer is preferably 2.5 μm or less, and more preferably 0.1 to 2.3 μm. Even if the thickness is increased to more than 2.5 μm, performance is not enhanced. On the contrary, strict conditions are required for coating because the thickness of the coating is liable to become nonuniform, and the surface smoothness is also liable to deteriorate.
  • The backcoat layer is intended to enhance the running stability and to prevent electrification of the magnetic layer, and is provided if required. Preferably, the backcoat layer contains 30 to 80 percent by weight of carbon black. As the carbon black, any type can be used as long as it is generally used, and the same carbon black as in the above-described non-magnetic layer may be used. In addition to the carbon black, the backcoat layer may further contain various types of non-magnetic, inorganic powder used for the magnetic layer, such as an abrasive; a dispersant such as a surfactant; a higher fatty acid; a fatty ester; a lubricant, such as silicone oil, and other various types of additives.
  • The thickness (after calendaring) of the backcoat layer is 0.1 to 1.0 μm, and preferably 0.2 to 0.8 μm. If the thickness is more than 1.0 μm, the friction between a medium-sliding path and the medium becomes excessively large, and consequently the running stability tends to deteriorate. In contrast, in the case of a thickness of less than 0.1 μm, the coating of the backcoat layer is liable to be shaved off while the medium is running.
  • As described above, according to the present invention, an electron beam curable polyurethane resin for magnetic recording media can be produced using a known polyurethane resin having active hydrogen as the raw material. The resulting electron-beam curable polyurethane resin has excellent crosslinking characteristics, and thus a high-performance recording magnetic medium can be provided.
  • EXAMPLES
  • The present invention will further be described in detail using examples. However, the examples do not limit the present invention. In the following description, “part(s)” refers to “part(s) by weight”.
  • Synthesis Example 1 Polyurethane Acrylate Resin (1)
  • A one litter, three-neck flask was charged with 504 parts of HDI nurate, 0.18 part of dibutyltin dilaurate, and 0.22 part of 2,6-tert-butyl-4-methylphenol (BHT), and 232 parts of 2-hydroxyethyl acrylate was dripped while temperature was controlled to 60° C. After dripping, the sample was stirred at 60° C. for 2 hours and taken out. Thus, HDI nurate-2-HEA adduct (modifying compound) was obtained.
  • Next, 262 parts of Estane 5778P produced by BP Goodrich Co., 700 parts of methyl ethyl ketone (MEK), 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours. Then, 38 parts of the previously prepared HDI nurate-2-HEA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (1) was obtained.
  • Synthesis Example 2 Polyurethane Acrylate Resin (2)
  • A one litter, three-neck flask was charged with 504 parts of HDI nurate, 0.18 part of dibutyltin dilaurate, and 0.22 part of 2,6-tert-butyl-4-methylphenol (BHT), and 260 parts of 2-hydroxyethyl methacrylate (2-HEMA) was dripped while temperature was controlled to 60° C. After dripping, the sample was stirred at 60° C. for 2 hours and taken out. Thus, HDI nurate-2-HEMA adduct (modifying compound) was obtained.
  • Next, 262 parts of Estane 5778P produced by BF Goodrich Co., 700 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours. Then, 40 parts of the previously prepared HDI nurate-2-HEMA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus,
  • Synthesis Example 3 Polyurethane Acrylate Resin (3)
  • A one litter, three-neck flask was charged with 504 parts of HDI nurate, 0.18 part of dibutyltin dilaurate, and 0.22 part of 2,6-tert-butyl-4-methylphenol, and 496 parts of monohydroxypentaerythritol triacrylate was dropped while temperature was controlled to 60° C. After dripping, the sample was stirred at 60° C. for 2 hours and taken out. Thus, HDI nurate-monohydroxypentaerythritol triacrylate adduct (modifying compound) was obtained.
  • Next, 230 parts of Estane 5778P produced by BF Goodrich Co., 615 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours. Then, 53 parts of the previously prepared HDI nurate-monohydroxypentaerythritol triacrylate adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (3) was obtained.
  • Synthesis Example 4 Polyurethane Acrylate Resin (4)
  • A one litter, three-neck flask was charged with 333 parts of IPDI nurate, 450 parts of MEK, 0.44 part of dibutyltin dilaurate, and 0.27 part of 2,6-tert-butyl-4-methylphenol (BHT), and 116 parts of 2-hydroxyethyl acrylate (2-HEA) was dripped while temperature was controlled to 60° C. After dripping, the sample was stirred at 60° C. for 5 hours and taken out. Thus, IPDI nurate-2-HEA adduct (modifying compound) was obtained.
  • Next, 254 parts of Estane 5778P produced by BF Goodrich Co., 654 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 70° C. for 3 hours. Then, 92 parts of the previously prepared TPDT nutrate-2-HEA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (4) was obtained.
  • Synthesis Example 5 Polyurethane Acrylate Resin (5)
  • In a one litter, three-neck flask, 833 parts of Vylon UR8300 produced by Toyobo Co., Ltd., 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were placed and stirred at 70° C. for 1 hours. Then, 13 parts of the previously prepared HDI nurate-2-HEA adduct (modifying compound) was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (5) was obtained.
  • Synthesis Example 6 Polyurethane Acrylate Resin (6)
  • In a one litter, three-neck flask, 230 parts of Estane 5778P produced by BF Goodrich Co., 520 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.3 part of hydroquinone were placed and stirred at 70° C. for 3 hours. Then, 8 parts of 2-isocyanateethyl methacrylate was added. After stirring at 70° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (6) was obtained.
  • Synthesis Example 7 Polyurethane Acrylate Resin (7)
  • A one litter, three-neck flask was charged with 348 parts of tolylene diisocyanate (TDI) and heated to 80° C. Then, 260 parts of 2-hydroxyethyl methacrylate (2-HEMA), 0.07 part of tin octylate, and 0.05 part of hydroquinone were dripped while temperature was controlled to 80° C. After dripping, the sample was stirred at 80° C. for 3 hours and taken out. Thus, TDI-2-HEMA adduct was obtained.
  • Next, 226 parts of Estane 5778P produced by BF Goodrich Co., 560 parts of MEK, 0.5 part of dibutyltin dilaurate, and 0.05 part of 2,6-tert-butyl-4-methylphenol (BHT) were compounded and stirred at 80° C. for 3 hours. Then, 14 parts of the previously prepared TDI-2-HEMA adduct was added. After stirring at 80° C. for 15 hours, it was made sure that the isocyanate characteristic absorption peak (2270 cm−1) had disappeared in the IR spectrum, and then the sample was taken out. Thus, polyurethane acrylate resin (7) was obtained.
  • Synthesis Example 8 Polyurethane Acrylate Resin (8)
  • In a one litter, three-neck flask, 200 parts of Estane 5778P produced by BF Goodrich Co. and 525 parts of MEK were placed and stirred at 80° C. for 3 hours. Then, 6 parts of 1,2-cyclohexanedicarboxylic anhydride was added and allowed to react at 80° C. until the anhydride characteristic absorption peaks (1790 cm−1 and 1870 cm−1) disappeared. Furthermore, 12 parts of 1,2-cyclohexanedicarboxylic anhydride, 17 parts of glycidyl methacrylate, 0.02 part of hydroquinone, and 0.1 part of triethanolamine were slowly added and stirred at 80° C. for 20 hours. Then, it was made sure that the acid value was 4 or less, and the sample was taken out to obtain polyurethane acrylate resin (8).
  • Example 1
  • Evaluation 1: Evaluation of Crosslinking Characteristics
  • A coating of polyurethane acrylate resin (1) was formed to a thickness of 30 μm on a separation film, and was then exposed to an electron beam of 6 Mrad under the condition of an acceleration voltage of 200 kV to be cured. Next, the polyurethane resin coating film cured with electron beam was removed from the separation film, and the gel fraction was measure under the following conditions.
  • <Gel Fraction Measurement Conditions>
  • Solvent: methyl ethyl ketone (MEK)
  • Extraction condition: boiling in MEK
  • Extraction time: 5 hours
  • Extraction was performed under the conditions above. The polyurethane resin coating film was weighed before and after the extraction, and the gel fraction was calculated from the difference between the obtained weights.
  • Evaluation 2: Evaluation of Crosslinking Characteristics of Coating Films Containing Pigment or Magnetic Powder
  • For three types of coating, a magnetic metallic powder (magnetic paint), an α-iron oxide/carbon black mixture (non-magnetic paint), and a carbon black (carbon black paint) were each dispersed in polyurethane acrylate resin (1), and crosslinks were formed. Solvent resistances of these samples were evaluated to estimate crosslinking characteristics.
  • (1) Evaluation of Magnetic Metallic Powder
  • Preparation of Magnetic Paint Sample
    Magnetic metallic powder 100 parts by weight
    (Fe/Co/Al/Y = 100/10/5.2/2.0 (by weight):
    (Hc = 144.6 kA/m (1830 Oe),
    σs = 130 Am2/kg, BET = 57 m2/g,
    mean long-axis length = 0.10 μm)
    Polyurethane acrylate resin (1): 70 parts by weight
    MEK: 70 parts by weight
    Toluene: 120 parts by weight
    Cyclohexanone: 70 parts by weight
  • After being mixed and kneaded, these ingredients were dispersed with a sand grinder mill to prepare a magnetic paint.
  • Next, the resulting magnetic paint was applied on a polyethylene terephthalate (PET) film having a thickness of 6.1 μm so as to result in a dried thickness of 1.5 μm. After drying at a temperature of 100° C. calendaring was performed at a linear pressure of 2.9×105 N/m and a temperature of 90° C. and subsequently electron beam (EB) exposure (6 Mrad) was performed. Thus, a cured magnetic coating film was prepared.
  • (2) Evaluation of α-Iron Oxide/Carbon Black Pigment Mixture
  • Preparation of Non-Magnetic Paint Sample
    Non-magnetic powder: acicular α-Fe2O3: 80 parts by weight
    (mean short-axis diameter: 18 nm, aspect
    ratio: 6.1, pH: 8.9)
    Carbon black (#850B produced by Mitsubishi 20 parts by weight
    Chemical Co.):
    (mean particle size: 16 nm, BET: 200 m2/g,
    DBP oil absorption: 70 mL/100 g)
    Polyurethane acrylate resin (1): 70 parts by weight
    MEK: 120 parts by weight
    Toluene: 120 parts by weight
    Cyclohexanone: 70 parts by weight
  • After being mixed and kneaded, these ingredients were dispersed with a sand grinder mill to prepare a non-magnetic paint.
  • Next, the resulting non-magnetic paint was applied on a PET film having a thickness of 6.1 μm so as to result in a dried thickness of 1.5 μm. After drying at a temperature of 100° C., calendaring was performed at a linear pressure of 2.9×105 N/m and a temperature of 90° C. and subsequently EB exposure (6 Mrad) was performed. Thus, a cured non-magnetic coating film was prepared.
  • (3) Evaluation of Carbon Black Type
  • Preparation of Carbon Black Paint Sample
    Carbon black: 100 parts by weight
    (Conductex SC produced by Columbian Carbon
    Co., mean particle size: 20 nm,
    BET: 220 m2/g)
    Carbon black: 1 part by weight
    (Sevacarb MT produced by Columbian Carbon
    Co., mean particle size: 350 nm,
    BET: 8 m2/g)
    Polyurethane acrylate resin (1): 330 parts by weight
    MEK: 350 parts by weight
    Toluene: 350 parts by weight
    Cyclohexanone: 170 parts by weight
  • After being mixed and kneaded, these ingredients were dispersed with a sand grinder mill.
  • Next, the resulting carbon black paint was applied on a PET film having a thickness of 6.1 μm so as to result in a dried thickness of 1.5 μm. After drying at a temperature of 100° C., calendaring was performed at a linear pressure of 2.9×105 N/m and a temperature of 70° C. and subsequently EB exposure (6 Mrad) was performed. Thus, a cured carbon black coating film was prepared.
  • The solvent resistances of the film samples prepared in the above-described manner were evaluated according to the following procedure and criteria.
  • 1. A cotton swab impregnated with MEK was used.
  • 2. The surfaces of the films were rubbed with the cotton swab.
  • 3. It was counted how many times of rubbing were performed before the film disappeared.
  • 4. 10 times or more: good
  • 5 to 10 times: fair
  • 1 to 5 times: bad
  • Example 2
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (2) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Example 3
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (3) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Example 4
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (4) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Example 5
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (5) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Comparative Example 1
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (6) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Comparative Example 2
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (7) was used Instead of polyurethane acrylate resin (1) used in Example 1.
  • Comparative Example 3
  • Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that polyurethane acrylate resin (8) was used instead of polyurethane acrylate resin (1) used in Example 1.
  • Comparative Example 4
  • In 700 g of MEK, 300 g of Estane 5778P produced by BF Goodrich Co. was dissolved to prepare a polyurethane resin solution. Coating film samples were prepared and the gel fractions and solvent resistances were evaluated, in an identical manner to Example 1 except that this polyurethane resin solution was used instead of polyurethane acrylate resin (1) used in Example 1.
    TABLE 1
    Solvent resistance
    Non- Carbon
    Gel Magnetic magnetic black
    fraction coating coating coating
    Resin (%) film film film
    Example 1 Polyurethane 96 Good Good Good
    acrylate resin
    (1)
    Example 2 Polyurethane 95 Good Good Good
    acrylate resin
    (2)
    Example 3 Polyurethane 98 Good Good Good
    acrylate resin
    (3)
    Example 4 Polyurethane 96 Good Good Good
    acrylate resin
    (4)
    Example 5 Polyurethane 85 Good- Good- Good-
    acrylate resin Fair Fair Fair
    (5)
    Comparative Polyurethane 20 Bad Bad Bad
    Example 1 acrylate resin
    (6)
    Comparative Polyurethane 5 Bad Bad Bad
    Example 2 acrylate resin
    (7)
    Comparative Polyurethane 5 Bad Bad Bad
    Example 3 acrylate resin
    (8)
    Comparative Polyurethane 0 Bad Bad Bad
    Example 4 resin solution
  • According to the results shown in Table 1 above it has been shown that the polyurethane resins of the examples produced by modifying a polyurethane resin having active hydrogen with a compound having two or more of acrylic double bonds and an isocyanate group in the molecule thereof have more excellent crosslinking characteristics than those of the known polyurethane resin used in the comparative examples and can result in cured coating films having better solvent resistance to a magnetic paint, a non-magnetic paint, and a black carbon paint.

Claims (6)

1-20. (canceled)
21. An electron-beam curable polyurethane resin for a magnetic recording medium comprising an isocyanurate having two acrylic double bonds.
22. The electron-beam curable polyurethane resin for a magnetic recording medium of claim 21, wherein the isocyanurate is delivered by a trimer of isophorone diisocyanate.
23. The electron-beam curable polyurethane resin for a magnetic recording medium of claim 21, wherein the isocyanurate is delivered by an alcohol having at least one acrylic double bond.
24. A magnetic recording medium comprising the electron-beam curable polyurethane resin of claim 21.
25. The magnetic recording medium of claim 24, further comprising a non-magnetic substrate provided with a layer containing the electron-beam curable polyurethane resin.
US11/268,491 2002-03-29 2005-11-08 Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same and magnetic recording medium using the same Abandoned US20060115687A1 (en)

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Families Citing this family (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7026371B2 (en) * 2002-03-29 2006-04-11 Tdk Corporation Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same, and magnetic recording medium using the same
US20040241453A1 (en) * 2003-05-28 2004-12-02 Tdk Corporation Electron beam curing resin for magnetic recording medium, method for manufacturing the same, and magnetic recording medium including the same
EP1893777B1 (en) 2005-06-07 2014-10-01 Luminex Corporation Methods for detection and typing of nucleic acids
BRPI0816605A2 (en) * 2007-10-10 2015-03-03 Ppg Ind Ohio Inc COMPOSITION OF RADIABLE CURABLE COATING, RADIATION CURED COATING AND METHOD FOR COATING A SUBSTRATE
JP5625984B2 (en) * 2011-02-15 2014-11-19 藤倉化成株式会社 Hard coat coating composition for metal substrate and molded article

Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4632878A (en) * 1984-08-21 1986-12-30 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4647506A (en) * 1984-08-09 1987-03-03 Union Carbide Corporation Flexible, self-cross-linking binders
US4652274A (en) * 1985-08-07 1987-03-24 Minnesota Mining And Manufacturing Company Coated abrasive product having radiation curable binder
US4716077A (en) * 1985-07-12 1987-12-29 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4876149A (en) * 1986-07-31 1989-10-24 Minnesota Mining And Manufacturing Company Magnetic recording media and a method using a stable fluid reactive dispersion in preparing magnetic recording media
US4943479A (en) * 1987-04-10 1990-07-24 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4959263A (en) * 1987-05-18 1990-09-25 Fuji Photo Film Co., Ltd. Magnetic recording medium
US5134035A (en) * 1990-06-25 1992-07-28 Minnesota Mining And Manufacturing Company Magnetic recording medium containing a polyurethane copolymer with a free radically polymerized polymer segment grafted to the polyurethane through a sulfur atom
US5218072A (en) * 1990-06-25 1993-06-08 Minnesota Mining And Manufacturing Company Sulfonated and non-sulfonated, thiol, and hydroxy functional polyurethanes and graft copolymers made therewith
US5244739A (en) * 1990-06-25 1993-09-14 Minnesota Mining And Manufacturing Company Magnetic recording media comprising a cured dispersion coating of a magnetizable pigment and polyurethane polymer containing a vinyl polymeric segment pendant from the polyurethane backbone
US5322861A (en) * 1991-10-01 1994-06-21 Mitsubishi Kasei Corporation Ultraviolet-hardening urethane acrylate oligomer
US20040091632A1 (en) * 2001-03-28 2004-05-13 Hitoshi Matsunami Process for coating with radiation-curable resin composition and laminates
US7026371B2 (en) * 2002-03-29 2006-04-11 Tdk Corporation Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same, and magnetic recording medium using the same

Family Cites Families (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JPH0643159B2 (en) 1987-07-22 1994-06-08 日本ビクター株式会社 XYZ plotter
JP2514682B2 (en) 1988-01-29 1996-07-10 東洋インキ製造株式会社 Magnetic recording media
JP2610468B2 (en) 1988-02-24 1997-05-14 日本合成ゴム株式会社 Method for producing radiation-curable polyurethane
JPH031727A (en) 1989-05-30 1991-01-08 Sony Corp Audio circuit with timer function
JP3044754B2 (en) 1990-07-02 2000-05-22 東洋紡績株式会社 Magnetic recording media

Patent Citations (13)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4647506A (en) * 1984-08-09 1987-03-03 Union Carbide Corporation Flexible, self-cross-linking binders
US4632878A (en) * 1984-08-21 1986-12-30 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4716077A (en) * 1985-07-12 1987-12-29 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4652274A (en) * 1985-08-07 1987-03-24 Minnesota Mining And Manufacturing Company Coated abrasive product having radiation curable binder
US4876149A (en) * 1986-07-31 1989-10-24 Minnesota Mining And Manufacturing Company Magnetic recording media and a method using a stable fluid reactive dispersion in preparing magnetic recording media
US4943479A (en) * 1987-04-10 1990-07-24 Fuji Photo Film Co., Ltd. Magnetic recording medium
US4959263A (en) * 1987-05-18 1990-09-25 Fuji Photo Film Co., Ltd. Magnetic recording medium
US5134035A (en) * 1990-06-25 1992-07-28 Minnesota Mining And Manufacturing Company Magnetic recording medium containing a polyurethane copolymer with a free radically polymerized polymer segment grafted to the polyurethane through a sulfur atom
US5218072A (en) * 1990-06-25 1993-06-08 Minnesota Mining And Manufacturing Company Sulfonated and non-sulfonated, thiol, and hydroxy functional polyurethanes and graft copolymers made therewith
US5244739A (en) * 1990-06-25 1993-09-14 Minnesota Mining And Manufacturing Company Magnetic recording media comprising a cured dispersion coating of a magnetizable pigment and polyurethane polymer containing a vinyl polymeric segment pendant from the polyurethane backbone
US5322861A (en) * 1991-10-01 1994-06-21 Mitsubishi Kasei Corporation Ultraviolet-hardening urethane acrylate oligomer
US20040091632A1 (en) * 2001-03-28 2004-05-13 Hitoshi Matsunami Process for coating with radiation-curable resin composition and laminates
US7026371B2 (en) * 2002-03-29 2006-04-11 Tdk Corporation Electron beam curable urethane resin for magnetic recording medium, method of manufacturing the same, and magnetic recording medium using the same

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