WO2012141413A1 - Resin composition for optical film and optical film using the same - Google Patents

Resin composition for optical film and optical film using the same Download PDF

Info

Publication number
WO2012141413A1
WO2012141413A1 PCT/KR2012/000667 KR2012000667W WO2012141413A1 WO 2012141413 A1 WO2012141413 A1 WO 2012141413A1 KR 2012000667 W KR2012000667 W KR 2012000667W WO 2012141413 A1 WO2012141413 A1 WO 2012141413A1
Authority
WO
WIPO (PCT)
Prior art keywords
optical film
resin composition
meth
film
unit
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/KR2012/000667
Other languages
French (fr)
Inventor
Jae-Bum Seo
Chang-Hun Han
Dae-Woo Lee
Jung-Tae Park
Eun-Jung Choi
Byoung-Il Kang
Joon-Sik Kim
Su-Kyung Kim
Da-Eun Sung
Nam-Jeong Lee
Beom-Seok Kim
Yu-Taek Sung
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
LG Chem Ltd
Original Assignee
LG Chem Ltd
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from KR1020110085942A external-priority patent/KR101269673B1/en
Application filed by LG Chem Ltd filed Critical LG Chem Ltd
Priority to US13/989,377 priority Critical patent/US9494712B2/en
Priority to CN201280007965.2A priority patent/CN103347952B/en
Priority to JP2013551907A priority patent/JP5557303B2/en
Publication of WO2012141413A1 publication Critical patent/WO2012141413A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

Links

Classifications

    • GPHYSICS
    • G02OPTICS
    • G02BOPTICAL ELEMENTS, SYSTEMS OR APPARATUS
    • G02B1/00Optical elements characterised by the material of which they are made; Optical coatings for optical elements
    • G02B1/04Optical elements characterised by the material of which they are made; Optical coatings for optical elements made of organic materials, e.g. plastics
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08FMACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
    • C08F220/00Copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical or a salt, anhydride ester, amide, imide or nitrile thereof
    • C08F220/02Monocarboxylic acids having less than ten carbon atoms; Derivatives thereof
    • C08F220/10Esters
    • C08F220/12Esters of monohydric alcohols or phenols
    • C08F220/14Methyl esters, e.g. methyl (meth)acrylate
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08JWORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
    • C08J5/00Manufacture of articles or shaped materials containing macromolecular substances
    • C08J5/18Manufacture of films or sheets
    • CCHEMISTRY; METALLURGY
    • C08ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
    • C08JWORKING-UP; GENERAL PROCESSES OF COMPOUNDING; AFTER-TREATMENT NOT COVERED BY SUBCLASSES C08B, C08C, C08F, C08G or C08H
    • C08J2333/00Characterised by the use of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical, or of salts, anhydrides, esters, amides, imides, or nitriles thereof; Derivatives of such polymers
    • C08J2333/04Characterised by the use of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical, or of salts, anhydrides, esters, amides, imides, or nitriles thereof; Derivatives of such polymers esters
    • C08J2333/06Characterised by the use of homopolymers or copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and only one being terminated by only one carboxyl radical, or of salts, anhydrides, esters, amides, imides, or nitriles thereof; Derivatives of such polymers esters of esters containing only carbon, hydrogen, and oxygen, the oxygen atom being present only as part of the carboxyl radical
    • C08J2333/10Homopolymers or copolymers of methacrylic acid esters
    • C08J2333/12Homopolymers or copolymers of methyl methacrylate

Definitions

  • the present invention relates to a resin composition for an optical film and an optical film using the same, and more particularly, to a resin composition for an optical film having excellent heat resistance and optical properties as well as having a low thermal expansion coefficient and an optical film using the resin composition.
  • CTR cathode ray tube
  • PDP plasma display
  • LCD liquid crystal display
  • OELD organic electroluminescent display
  • polymer films such as a polarizing film, a polarizer protective film, a retardation film, a light guide plate, and a plastic substrate have been used for such display devices and there is a trend for the use of such polymer materials in a display device of which required characteristics have become highly advanced.
  • the most widely used polymer film for a display is a triacetyl cellulose (TAC) film which is used for a polarizing plate protective film or the like.
  • TAC triacetyl cellulose
  • the TAC film may have a limitation in that the polarizability thereof may decrease, a polarizer and the film may be separated or optical properties thereof may deteriorate when the TAC film is used over a prolonged period of time in a high-temperature or high-humidity environment.
  • a polystyrene-based polymer film, an acryl-based polymer film, such as methyl methacrylate, or a polycarbonate-based polymer film are suggested as alternatives to the TAC film.
  • a method of copolymerizing or blending a monomer or a polymer having positive birefringence with a monomer or a polymer having negative birefringence was suggested for a material for a polymer film having a low retardation value, as well as excellent heat resistance.
  • a typical material according to the foregoing method may be a copolymer of benzyl methacrylate and methyl methacrylate. The benzyl methacrylate and methyl methacrylate have excellent optical properties because their retardation values approach zero.
  • a curling phenomenon may be generated, in which a polarizing plate is severely bent or distorted when a polarizing film and a TAC film are laminated together, because the thermal expansion coefficients of the benzyl methacrylate and methyl methacrylate are both higher than that of the TAC film used for a polarizing plate protective film.
  • display quality deteriorates due to the occurrence of a light-leakage phenomenon in the polarizing plate and liquid crystals in a display panel may also be damaged. Therefore, urgent improvements to rectify the foregoing limitations are required.
  • An aspect of the present invention provides a resin composition for an optical film enabling an improvement of a curling phenomenon when applied to a polarizing plate due to excellent optical properties and heat resistance as well as a low thermal expansion coefficient and an optical film using the resin composition.
  • the inventors of the present invention conducted a great deal of research to develop a resin composition for an optical film having a low thermal expansion coefficient as well as excellent optical properties and heat resistance, and, as a result, found that an optical film having a low thermal expansion coefficient as well as a small retardation value and a high glass transition temperature may be prepared when a four-component resin composition including an alkyl(meth)acrylate unit, a benzyl(meth)acrylate unit, (meth)acrylic acid unit, and a unit expressed by Chemical Formula I is used, and completed the present invention.
  • a resin composition for an optical film of the present invention includes an alkyl(meth)acrylate unit, a benzyl(meth)acrylate unit, (meth)acrylic acid unit, and a unit expressed by the following Chemical Formula I.
  • the resin composition may be a copolymer resin, in which each unit is included in a repeating unit form, and a blended resin, in which monomers composed of each unit or homopolymers are blended, or a blended resin, in which two or more copolymers composed of two or more units are blended.
  • the resin composition for example, may be a four-component copolymer resin in which the each unit component is included in a repeating unit form.
  • the (meth)acrylic acid unit improves heat resistance and lowers a thermal expansion coefficient by introducing a polar group.
  • the (meth)acrylic acid unit may be an acrylic acid, a methacrylic acid, a methylacrylic acid, a methyl methacrylic acid, an ethylacrylic acid, an ethyl methacrylic acid, a butylacrylic acid, or a butyl methacrylic acid.
  • the (meth)acrylic acid unit may be methacrylic acid.
  • the unit expressed by the above Chemical Formula I is to reduce the thermal expansion coefficient of the resin composition.
  • the thermal expansion coefficient of the polymer may be reduced when a bulky functional group preventing polymer chain conformation is introduced to a polymer main chain.
  • the thermal expansion coefficient may be reduced when polymers including a bulky functional group, for example, when styrene or polycarbonate are used therefor, a limitation in optical properties may be generated because birefringence is manifested by stretching.
  • the thermal expansion coefficient may be effectively reduced without adversely affecting the optical properties when a compound expressed by Chemical Formula I is used as in the present invention.
  • Particular examples of the unit expressed by Chemical Formula I may be a glutaric acid anhydride, a glutaric acid imide and the like.
  • alkyl(meth)acrylate, (meth)acrylic acid, and benzyl(meth)acrylate are polymerized by a suspension polymerization method, and then the resin composition of the present invention may be prepared by a heat treatment method.
  • glutaric acid anhydride will be formed while a hydrolysis and condensation reaction between alkyl(meth)acrylate and/or benzyl(meth)acrylate and (meth)acrylic acid is performed during the heat treatment process, and as a result, the four-component resin composition of the present invention will be formed.
  • the optical film may be prepared by forming the resin composition into a film shape according to a method well-known in the art such as solution casting or extrusion method. In consideration of economic factors, the extrusion method, for example, may be used. In some cases, an additive such as a conditioner may be additionally added within a range that will not deteriorate the physical properties of the film during a manufacturing process of the film and a uniaxial or biaxial stretching process may be additionally performed.
  • a conditioner may be additionally added within a range that will not deteriorate the physical properties of the film during a manufacturing process of the film and a uniaxial or biaxial stretching process may be additionally performed.
  • the TAC film for example, may be included among the foregoing polarizer protective films. Since the optical film of the present invention has a thermal expansion coefficient similar to that of the TAC film, a curling phenomenon generated due to the difference in the thermal expansion coefficient may be minimized when the TAC film is adhered to one side of the polarizer and the optical film of the present invention is adhered to the other side.
  • the polarizing plate of the present invention thus prepared may have a bending angle of 150 degrees or less after left standing at 25°C and 50% RH for 24 hours, and for example, may have a bending angle in a range of about 120 degrees to 150 degrees.
  • the bending angle of the polarizing plate is more than 150 degrees, display quality may deteriorate due to the occurrence of severe curling in the polarizing plate.
  • the bending angle denotes a central angle measured when the bent polarizing plate is regarded as a circular arc.
  • the image display device may be a liquid crystal display (LCD), a plasma display (PDP), or electroluminescent display (ELD).
  • LCD liquid crystal display
  • PDP plasma display
  • ELD electroluminescent display
  • Tg Glass Transition Temperature
  • Haze and Light Transmittance measured according to an ASTM 1003 method.
  • CTE Coefficient of Thermal Expansion

Landscapes

  • Chemical & Material Sciences (AREA)
  • Physics & Mathematics (AREA)
  • Manufacturing & Machinery (AREA)
  • Health & Medical Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Medicinal Chemistry (AREA)
  • Polymers & Plastics (AREA)
  • Organic Chemistry (AREA)
  • Engineering & Computer Science (AREA)
  • Materials Engineering (AREA)
  • General Physics & Mathematics (AREA)
  • Optics & Photonics (AREA)
  • Polarising Elements (AREA)

Abstract

Provided are a resin composition for an optical film including an alkyl(meth)acrylate unit, a benzyl(meth)acrylate unit, a (meth)acrylic acid unit, and a unit expressed by Chemical Formula I, an optical film, a polarizing plate, and an image display device using the resin composition.

Description

RESIN COMPOSITION FOR OPTICAL FILM AND OPTICAL FILM USING THE SAME
The present invention relates to a resin composition for an optical film and an optical film using the same, and more particularly, to a resin composition for an optical film having excellent heat resistance and optical properties as well as having a low thermal expansion coefficient and an optical film using the resin composition.
In line with recent advancements in optical technology, various display technologies replacing a conventional cathode ray tube (CRT), such as a plasma display (PDP), a liquid crystal display (LCD), and an organic electroluminescent display (OELD), have been developed and are commercially available. Meanwhile, various polymer films such as a polarizing film, a polarizer protective film, a retardation film, a light guide plate, and a plastic substrate have been used for such display devices and there is a trend for the use of such polymer materials in a display device of which required characteristics have become highly advanced.
Currently, the most widely used polymer film for a display is a triacetyl cellulose (TAC) film which is used for a polarizing plate protective film or the like. However, the TAC film may have a limitation in that the polarizability thereof may decrease, a polarizer and the film may be separated or optical properties thereof may deteriorate when the TAC film is used over a prolonged period of time in a high-temperature or high-humidity environment. In order to resolve the foregoing limitation, a polystyrene-based polymer film, an acryl-based polymer film, such as methyl methacrylate, or a polycarbonate-based polymer film are suggested as alternatives to the TAC film. The foregoing polymer films may have excellent heat resistance. However, with respect to the polystyrene or polycarbonate film, birefringence may be generated during film alignment, thereby adversely affecting optical properties, because the polystyrene or polycarbonate film has an aromatic ring in the polymer, and with respect to the methyl methacrylate, a retardation value thereof is relatively small in comparison to the polystyrene or polycarbonate but the methyl methacrylate is insufficient to be used for a material for an optical device such as a liquid crystal device requiring high precision.
In order to address such limitations, a method of copolymerizing or blending a monomer or a polymer having positive birefringence with a monomer or a polymer having negative birefringence was suggested for a material for a polymer film having a low retardation value, as well as excellent heat resistance. A typical material according to the foregoing method may be a copolymer of benzyl methacrylate and methyl methacrylate. The benzyl methacrylate and methyl methacrylate have excellent optical properties because their retardation values approach zero. However, there is a limitation in that a curling phenomenon may be generated, in which a polarizing plate is severely bent or distorted when a polarizing film and a TAC film are laminated together, because the thermal expansion coefficients of the benzyl methacrylate and methyl methacrylate are both higher than that of the TAC film used for a polarizing plate protective film. When the foregoing curling phenomenon occurs in a polarizing plate, display quality deteriorates due to the occurrence of a light-leakage phenomenon in the polarizing plate and liquid crystals in a display panel may also be damaged. Therefore, urgent improvements to rectify the foregoing limitations are required.
An aspect of the present invention provides a resin composition for an optical film enabling an improvement of a curling phenomenon when applied to a polarizing plate due to excellent optical properties and heat resistance as well as a low thermal expansion coefficient and an optical film using the resin composition.
According to an aspect of the present invention, there is provided a resin composition for an optical film including: an alkyl(meth)acrylate unit; a benzyl(meth)acrylate unit; a (meth)acrylic acid unit; and a unit expressed by Chemical Formula I below,
[Chemical Formula I]
Figure PCTKR2012000667-appb-I000001
where X is NR3 or O, and R1, R2, and R3 are hydrogen, C1-10 alkyl and C3-20 cycloalkyl or C3-20 aryl, respectively.
According to another aspect of the present invention, there is provided an optical film including the resin composition for an optical film.
An optical film using a resin composition for an optical film according to the present invention is suitable to be used as a polarizing plate protective film due to excellent transparency and heat resistance as well as a low thermal expansion coefficient.
Hereinafter, the present invention is described in more detail.
The inventors of the present invention conducted a great deal of research to develop a resin composition for an optical film having a low thermal expansion coefficient as well as excellent optical properties and heat resistance, and, as a result, found that an optical film having a low thermal expansion coefficient as well as a small retardation value and a high glass transition temperature may be prepared when a four-component resin composition including an alkyl(meth)acrylate unit, a benzyl(meth)acrylate unit, (meth)acrylic acid unit, and a unit expressed by Chemical Formula I is used, and completed the present invention.
A resin composition for an optical film of the present invention includes an alkyl(meth)acrylate unit, a benzyl(meth)acrylate unit, (meth)acrylic acid unit, and a unit expressed by the following Chemical Formula I. At this time, the resin composition may be a copolymer resin, in which each unit is included in a repeating unit form, and a blended resin, in which monomers composed of each unit or homopolymers are blended, or a blended resin, in which two or more copolymers composed of two or more units are blended. Among the foregoing resin compositions, the resin composition, for example, may be a four-component copolymer resin in which the each unit component is included in a repeating unit form.
In the resin composition of the present invention, the alkyl(meth)acrylate unit denotes both alkyl acrylate and alkyl methacrylate. In consideration of optical transparency, compatibility, processability, and productivity, a carbon number of an alkyl group of the alkyl(meth)acrylate may be about 1 to 10, and for example, the carbon number may be about 1 to 4. For example, the alkyl group of the alkyl(meth)acrylate unit may be a methyl or an ethyl group. However, the alkyl(meth)acrylate unit is not limited thereto. Meanwhile, a content of the alkyl(meth)acrylate unit is about 55 to 94 parts by weight based on 100 parts by weight of a total resin composition, may be 60 to 90 parts by weight, and for example, may be 70 to 90 parts by weight. The reason for this is that excellent retardation characteristics and optical properties may be obtained when the content of the alkyl(meth)acrylate unit is within the foregoing ranges.
In the resin composition of the present invention, the benzyl(meth)acrylate unit provides an appropriate retardation value to the optical film of the present invention and compatibility between the alkyl(meth)acrylate and (meth)acrylic acid. The benzyl(meth)acrylate unit may be benzyl methacrylate or benzyl acrylate, and for example, may be benzyl methacrylate. Meanwhile, a content of the benzyl(meth)acrylate unit may be about 2 to 20 parts by weight based on 100 parts by weight of a total resin composition, and for example, may be 2 to 18 parts by weight. The reason for this is that desired retardation characteristics may be obtained when the content of the benzyl(meth)acrylate unit is within the foregoing ranges.
Meanwhile, in the resin composition of the present invention, the (meth)acrylic acid unit improves heat resistance and lowers a thermal expansion coefficient by introducing a polar group. Examples of the (meth)acrylic acid unit may be an acrylic acid, a methacrylic acid, a methylacrylic acid, a methyl methacrylic acid, an ethylacrylic acid, an ethyl methacrylic acid, a butylacrylic acid, or a butyl methacrylic acid. For example, the (meth)acrylic acid unit may be methacrylic acid. Meanwhile, a content of the (meth)acrylic acid unit is about 1 to 10 parts by weight based on 100 parts by weight of a total resin composition, may be 1 to 5 parts by weight, may be 1 to 3 parts by weight, and for example, may be 1 to 2 parts by weight. The reason for this is that desired heat resistance characteristics may be obtained when the content of the (meth)acrylic acid unit is in the foregoing ranges. In particular, there is an additional advantage in which the generation of bubbles may be significantly reduced in a film preparation process when the content of the (meth)acrylic acid is 2 parts by weight or less.
Also, the resin composition of the present invention includes a unit expressed by the following Chemical Formula I.
[Chemical Formula I]
Figure PCTKR2012000667-appb-I000002
Where X is NR3 or O, and R1, R2, and R3 are hydrogen, C1-10 alkyl, C3-20 cycloalkyl or C3-20 aryl, respectively.
The unit expressed by the above Chemical Formula I is to reduce the thermal expansion coefficient of the resin composition. The thermal expansion coefficient of the polymer may be reduced when a bulky functional group preventing polymer chain conformation is introduced to a polymer main chain. Although the thermal expansion coefficient may be reduced when polymers including a bulky functional group, for example, when styrene or polycarbonate are used therefor, a limitation in optical properties may be generated because birefringence is manifested by stretching. However, the thermal expansion coefficient may be effectively reduced without adversely affecting the optical properties when a compound expressed by Chemical Formula I is used as in the present invention. Particular examples of the unit expressed by Chemical Formula I may be a glutaric acid anhydride, a glutaric acid imide and the like. For example, the unit expressed by Chemical Formula I may be a glutaric acid anhydride. Meanwhile, a content of the unit expressed by Chemical Formula I may be about 3 to 15 parts by weight based on 100 parts by weight of a total resin composition. A low thermal expansion coefficient may be obtained without deteriorating retardation characteristics when the content of the unit expressed by Chemical Formula I is within the foregoing range.
A glass transition temperature of the resin composition for an optical film of the present invention including the foregoing components is in a range of about 120℃ to 500℃, may be in a range of 125℃ to 500℃, and for example, may be in a range of 125℃ to 200℃. Also, in terms of processability, heat resistance, and productivity, a weight-average molecular weight may be in a range of 50,000 to 500,000, and for example, may be about 50,000 to 200,000. Transparency (haze) may be in a range of about 0.1% to 3% and a degree of light transmission may be 90% or more. Further, a yellow index value may be in a range of about 0.3 to 2.0. Display colors may be changed when the yellow index value is outside of the foregoing range.
Meanwhile, the foregoing resin composition of the present invention may be prepared according to a method of preparing a copolymer resin or a method of preparing a blended resin which is well known in the art. For example, monomers of each component may be mixed, and then the resin composition of the present invention may be formed by solution polymerization, bulk polymerization, suspension polymerization, emulsion polymerization, or may be prepared by blending monomers of each component or homopolymer resins or a copolymer resin of two or more components.
Meanwhile, as the result of a great deal of research, the present inventors found that the four-component resin composition of the present invention may be prepared through a specific method by polymerizing three components, i.e., alkyl(meth)acrylate, (meth)acrylic acid, and benzyl(meth)acrylate, without adding a component of Chemical Formula I when the component of Chemical Formula I of the resin composition according to the present invention is a glutaric acid anhydride.
More particularly, the resin composition of the present invention, for example, may be prepared by copolymerizing alkyl(meth)acrylate, (meth)acrylic acid, and benzyl(meth)acrylate in a continuous bulk polymerization method. With respect to the continuous bulk polymerization method, a large amount of heat is generated during a polymerization process different from the solution or suspension polymerization, and glutaric acid anhydride may be formed while a hydrolysis and condensation reaction between alkyl(meth)acrylate and/or benzyl(meth)acrylate and (meth)acrylic acid is performed according to the heat generated during the polymerization process.
Also, for example, alkyl(meth)acrylate, (meth)acrylic acid, and benzyl(meth)acrylate are polymerized by a suspension polymerization method, and then the resin composition of the present invention may be prepared by a heat treatment method. In this case, glutaric acid anhydride will be formed while a hydrolysis and condensation reaction between alkyl(meth)acrylate and/or benzyl(meth)acrylate and (meth)acrylic acid is performed during the heat treatment process, and as a result, the four-component resin composition of the present invention will be formed.
When the resin composition of the present invention is formed by a heat treatment after the foregoing continuous bulk polymerization method or suspension polymerization, the four-component resin composition of the present invention may be formed without adding a glutaric acid anhydride. Therefore, a higher quality film than that of a three-component resin including alkyl(meth)acrylate, benzyl(meth)acrylate, and (meth)acrylic acid may be formed, because preparation costs are low as well as a decrease in the thermal expansion coefficient of the resin composition by means of the formed glutaric acid anhydride.
Another aspect of the present invention relates to an optical film including the resin composition of the present invention.
The optical film may be prepared by forming the resin composition into a film shape according to a method well-known in the art such as solution casting or extrusion method. In consideration of economic factors, the extrusion method, for example, may be used. In some cases, an additive such as a conditioner may be additionally added within a range that will not deteriorate the physical properties of the film during a manufacturing process of the film and a uniaxial or biaxial stretching process may be additionally performed.
In the stretching process, machine direction (MD) stretching and transverse direction (TD) stretching may be respectively performed or may all be performed. Also, when the machine direction stretching and transverse direction stretching are all performed, any stretching is first performed and then the other stretching may be performed or both stretchings may be performed at the same time. Further, the stretchings may be performed in one operation and may also be performed through multiple operations. Stretching by means of the speed difference between rolls may be performed with respect to the machine direction stretching and a tenter may be used with respect to the transverse direction stretching. A rail start angle of the tenter is generally set to within 10 degrees to prevent a bowing phenomenon generated during a transverse direction stretching and regularly control an angle of an optical axis. The effect of preventing the bowing phenomenon may be obtained when the transverse direction stretching is performed through multiple operations.
Meanwhile, in the stretching process, when the glass transition temperature of the resin composition is referred to as 'Tg', the stretching may be performed at a temperature ranging from (Tg - 20℃) ~ (Tg + 30℃). The glass transition temperature refers to a temperature range starting from a temperature at which a storage modulus of the resin composition starts to be lowered so a loss modulus starts to be increased to be greater than the storage modulus to a temperature at which orientation of polymer chains is lessened to be lost. The glass transition temperature of the resin composition may be measured by a differential scanning calorimeter (DSC). The temperature during the stretching process may be, for example, the glass transition temperature of the resin composition.
A stretching operation may be performed at a stretching speed range of 1 m/min to 100 m/min with respect to a small stretching machine (universal testing machine, Zwick Z010) and may be performed at a stretching speed range of 0.1 m/min to 2 m/min with respect to a pilot stretching machine. A draw ratio may be in a range of about 5% to 300%.
Retardation characteristics of the film may be controlled through the foregoing stretching process.
Meanwhile, an optical film of the present invention prepared by the foregoing method has an in-plane retardation value (Rin) ranging from 0 nm to 10 nm and a thickness retardation value (Rth) ranging from about -5 nm to 10 nm at a wavelength of 580 nm. Herein, the in-plane retardation value denotes a value defined by the following Mathematical Equation 1 and the thickness retardation value denotes a value defined by the following Mathematical Equation 2.
[Mathematical Equation 1]
Rin = (nx-ny)×d
[Mathematical Equation 2]
Rth = (nz-ny)×d
where nx is an in-plane refractive index of the film in a direction having the largest refractive index, ny is an in-plane refractive index of the film in a direction perpendicular to the nx direction, nz is a thickness refractive index, and d is a thickness of the film.
Also, the optical film of the present invention has a thermal expansion coefficient in a range of about 50 ppm/K to 70 ppm/K and has a lower thermal expansion coefficient in comparison to a typical acryl-based film. Thus, since the thermal expansion coefficient is low, the occurrence of curling may be prevented when the optical film of the present invention is used for a polarizing plate.
Further, the optical film of the present invention has a thickness range of 20 ㎛ to 200 ㎛, and may have a thickness range of 40 ㎛ to 120 ㎛. Transparency is in a range of 0.1% to 3%, and the degree of light transmission may be 90% or more. The reason for this is that the optical film of the present invention is suitable to be used as a polarizing plate protective film when the thickness, transparency, and transmittance of the film are within the foregoing ranges.
Another aspect of the present invention relates to a polarizer and a polarizing plate including the optical film according to the present invention used as a protective film on at least one side of the polarizer. The optical film according to the present invention may be included on both sides of the polarizer or may only be included on one side. When the optical film according to the present invention is included on one side of the polarizer, a polarizer protective film well known in the art such as a triacetyl cellulose (TAC) film, a polyethylene terephthalate (PET) film, a cyclo-olefin (COP) film, a polycarbonate (PC) film, or a norbonene-based film may be included on the other side. In consideration of economic factors, the TAC film, for example, may be included among the foregoing polarizer protective films. Since the optical film of the present invention has a thermal expansion coefficient similar to that of the TAC film, a curling phenomenon generated due to the difference in the thermal expansion coefficient may be minimized when the TAC film is adhered to one side of the polarizer and the optical film of the present invention is adhered to the other side.
Meanwhile, the adhesion between the polarizer and the optical film and/or the protective film of the present invention may be performed by a method in which an adhesive is coated on the film or a surface of the polarizer by using a roll coater, a gravure coater, a bar coater, a knife coater, or a capillary coater, and then the protective film and the polarizer are heated and laminated by a laminating roll or laminated by pressing at room temperature. Meanwhile, adhesives used in the art such as a polyvinyl alcohol-based adhesive, a polyurethane-based adhesive, or an acryl-based adhesive may be used without limit as the foregoing adhesive.
The polarizing plate of the present invention thus prepared may have a bending angle of 150 degrees or less after left standing at 25℃ and 50% RH for 24 hours, and for example, may have a bending angle in a range of about 120 degrees to 150 degrees. When the bending angle of the polarizing plate is more than 150 degrees, display quality may deteriorate due to the occurrence of severe curling in the polarizing plate. Herein, the bending angle denotes a central angle measured when the bent polarizing plate is regarded as a circular arc.
Another aspect of the present invention relates to an image display device including the polarizing plate of the present invention. At this time, the image display device, for example, may be a liquid crystal display (LCD), a plasma display (PDP), or electroluminescent display (ELD).
Hereinafter, the present invention will be described in detail according to specific examples. The following examples are merely provided to more clearly understand the present invention, not to limit the scope of the present invention.
A method of evaluating physical properties in the present invention is as below.
1. Weight-Average Molecular Weight: the prepared resin was dissolved in tetrahydrofuran and measured by using gel permeation chromatography (GPC).
2. Glass Transition Temperature (Tg): measured by using a differential scanning calorimeter (DSC) of TA instruments.
3. Haze and Light Transmittance: measured according to an ASTM 1003 method.
4. Toughness: a state of disconnection was measured by bending a 60 ㎛ thick film by hand, and a case of no disconnection during 10 bends was denoted by ◎, a case of 1 to 3 disconnections was denoted by ○, and a case of 5 or more disconnections was denoted by X.
5. Coefficient of Thermal Expansion (CTE): measured by using a Pyris 6 DSC of Perkin Elmer Inc.
6. Retardation: measured by using an Elli-SE of Ellipso Technology.
7. Resin Composition: measured by using a C13-NMR
8. Yellow Index (YI): measured by using a color meter of Hunter Associates Laboratory, Inc.
9. Curling Characteristics: products after being laminated with a polarizing plate were stored in a constant temperature and humidity chamber (25℃, 50% RH) for 24 hours, and then curvatures of the polarizing plates were measured.
<Examples 1 to 7>
A methyl methacrylate monomer, a methacrylic acid monomer, and a benzyl methacrylate monomer are mixed in a toluene polymerization solvent according to the contents described in the following Table 1, and a polymerization solution was prepared by introducing 0.03 parts by weight of a dicumyl peroxide initiator, 0.5 parts by weight of a t-dodecyl mercaptan chain transfer agent, and 0.2 parts by weight of an Iraganox 245 antioxidant into the mixed solution. Thereafter, a resin including a methyl methacrylate unit, a methacrylic acid unit, a benzyl methacrylate unit, and a glutaric acid anhydride unit according to the contents described in Table 1 was prepared by continuous bulk polymerization. The composition, weight-average molecular weight, glass transition temperature, haze, light transmittance, and yellow index of the prepared resin were measured. The measurement results are shown in Table 1.
Next, a 180 ㎛ thick film was prepared from the resin by using a T-die extruder and a 60 ㎛ thick film was prepared through biaxially stretching the 180 ㎛ thick film two times in a machine direction (MD) and three times in a transverse direction (TD). The retardation value, toughness, and thermal expansion coefficient of the prepared optical film were measured. The measurement results are shown in Table 1.
The optical film and TAC film (Fuji Film) were adhered to each side of a PVA film to prepare a polarizing plate, and then curling characteristics were measured. The measurement results are shown in Table 1.
Table 1
Figure PCTKR2012000667-appb-T000001
BzMA: Benzyl methacrylate
MMA: Methyl methacrylate
MAA: Methacrylic acid
G/A: Glutaric acid anhydride
YI: Yellow index
CTE: Coefficient of thermal expansion
<Comparative Examples 1 to 6>
Resin composition, optical film, and polarizing plate were respectively prepared in the same manner as Examples 1 to 7 except that a methyl methacrylate monomer, a methacrylic acid monomer, and a benzyl methacrylate monomer were mixed according to the contents described in the following Table 2. The composition, weight-average molecular weight, glass transition temperature, haze, light transmittance, and yellow index of the prepared resin were measured by the same methods as those of Examples 1 to 7 and are shown in Table 2. Also, the retardation value, toughness, and thermal expansion coefficient of the prepared optical film were measured by the same methods as those of Examples 1 to 7 and are shown in Table 2.
Table 2
Figure PCTKR2012000667-appb-T000002
BzMA: Benzyl methacrylate
MMA: Methyl methacrylate
MAA: Methacrylic acid
G/A: Glutaric acid anhydride
YI: Yellow index
CTE: Coefficient of thermal expansion
<Examples 8 to 14>
A methyl methacrylate monomer, a methacrylic acid monomer, and a benzyl methacrylate monomer were mixed in 0.05 parts by weight of a 5% polyvinyl alcohol aqueous solution and 200 parts by weight of water according to the contents described in the following Table 3, and a polymerization solution was prepared by introducing 0.08 parts by weight of a t-hexyl peroxy-2-ethylhexanoate initiator, 0.2 parts by weight of a t-dodecyl mercaptan chain transfer agent, and 0.1 parts by weight of NaCl into the mixed solution. The polymerization solution was suspension polymerized at a first reaction temperature described in Table 3 for two hours and the temperature was increased to a second reaction temperature described in Table 3 to perform polymerization for one hour, and then the polymerized solution was cleaned and dried to prepare methyl methacrylate-benzyl methacrylate-methacrylic acid beads. The prepared beads were extruded at 270℃ through a co-rotating twin screw extruder to prepare a resin in a pellet state. The composition, weight-average molecular weight, glass transition temperature, haze, and light transmittance of the prepared resin were measured. The measurement results are shown in Table 3.
Next, a 180 ㎛ thick film was prepared from the resin by using a T-die extruder and a 60 ㎛ thick film was prepared through biaxially stretching the 180 ㎛ thick film two times in a machine direction (MD) and three times in a transverse direction (TD). The retardation value, toughness, and thermal expansion coefficient of the prepared optical film were measured. The measurement results are shown in Table 3.
Table 3
Figure PCTKR2012000667-appb-T000003
BzMA: Benzyl methacrylate
MMA: Methyl methacrylate
MAA: Methacrylic acid
G/A: Glutaric acid anhydride
YI: Yellow index
<Comparative Examples 8 to 13>
Resin composition, optical film, and polarizing plate were respectively prepared in the same manner as Examples 8 to 14 except that a methyl methacrylate monomer, a methacrylic acid monomer, and a benzyl methacrylate monomer were mixed according to the contents described in the following Table 4. The composition, weight-average molecular weight, glass transition temperature, haze, and light transmittance of the prepared resin were measured by the same methods as those of Examples 8 to 14 and are shown in Table 4. Also, the retardation value, toughness, and thermal expansion coefficient of the prepared optical film were measured by the same methods as those of Examples 8 to 14 and are shown in Table 4.
Table 4
Figure PCTKR2012000667-appb-T000004
BzMA: Benzyl methacrylate
MMA: Methyl methacrylate
MAA: Methacrylic acid
G/A: Glutaric acid anhydride
YI: Yellow index
While the present invention has been shown and described in connection with the exemplary embodiments, it will be apparent to those skilled in the art that modifications and variations can be made without departing from the spirit and scope of the invention as defined by the appended claims.

Claims (21)

  1. A resin composition for an optical film comprising:
    an alkyl(meth)acrylate unit;
    a benzyl(meth)acrylate unit;
    a (meth)acrylic acid unit; and
    a unit expressed by Chemical Formula I below,
    [Chemical Formula I]
    Figure PCTKR2012000667-appb-I000003
    where X is NR3 or O, and R1, R2, and R3 are hydrogen, C1-10 alkyl and C3-20 cycloalkyl or C3-20 aryl, respectively.
  2. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film comprises:
    about 55 to 94 parts by weight of the alkyl(meth)acrylate unit;
    about 2 to 20 parts by weight of the benzyl(meth)acrylate unit;
    about 1 to 10 parts by weight of the (meth)acrylic acid unit; and
    about 3 to 15 parts by weight of the unit expressed by Chemical Formula I.
  3. The resin composition for an optical film of claim 2, wherein a content of the (meth)acrylic acid unit is in a range of about 1 to 2 parts by weight.
  4. The resin composition for an optical film of claim 1, wherein an alkyl group of the alkyl(meth)acrylate unit has a carbon number of about 1 to about 10.
  5. The resin composition for an optical film of claim 4, wherein the alkyl(meth)acrylate unit is methyl methacrylate.
  6. The resin composition for an optical film of claim 1, wherein the benzyl(meth)acrylate unit is benzyl methacrylate.
  7. The resin composition for an optical film of claim 1, wherein the (meth)acrylic acid unit is selected from the group consisting of an acrylic acid, a methacrylic acid, a methylacrylic acid, a methyl methacrylic acid, an ethylacrylic acid, an ethyl methacrylic acid, a butylacrylic acid, and a butyl methacrylic acid.
  8. The resin composition for an optical film of claim 1, wherein the unit expressed by Chemical Formula I is a glutaric acid anhydride.
  9. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film is a copolymer comprising:
    about 55 to 94 parts by weight of the methyl methacrylate unit;
    about 2 to 20 parts by weight of the benzyl methacrylate unit;
    about 1 to 10 parts by weight of the methacrylic acid unit; and
    about 3 to 15 parts by weight of the glutaric acid anhydride unit.
  10. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film has a glass transition temperature range of about 120℃ to about 500℃.
  11. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film has a transparency range of about 0.1% to about 3%.
  12. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film has a yellow index range of about 0.3 to about 2.0.
  13. The resin composition for an optical film of claim 1, wherein the resin composition for an optical film has a transparency range of about 0.1% to about 3% and a yellow index range of about 0.3 to about 2.0.
  14. An optical film comprising the resin composition for an optical film of any one of claims 1 to 13.
  15. The optical film of claim 14, wherein the optical film has an in-plane retardation value (Rin) expressed by the following Mathematical Equation 1 ranging from about 0 nm to about 10 nm and a thickness retardation value (Rth) expressed by the following Mathematical Equation 2 ranging from about -5 nm to about 10 nm at a wavelength of about 580 nm.
    [Mathematical Equation 1]
    Rin = (nx-ny)×d
    [Mathematical Equation 2]
    Rth = (nz-ny)×d
    where nx is an in-plane refractive index of the film in a direction having a largest refractive index, ny is an in-plane refractive index of the film in a direction perpendicular to the nx direction, nz is a thickness refractive index, and d is a thickness of the film.
  16. The optical film of claim 14, wherein the optical film has a thermal expansion coefficient range of about 50 ppm/℃ to 70 ppm/℃.
  17. The optical film of claim 14, wherein the optical film has an in-plane retardation value (Rin) expressed by the following Mathematical Equation 1 ranging from about 0 nm to about 10 nm, a thickness retardation value (Rth) expressed by the following Mathematical Equation 2 ranging from about -5 nm to about 10 nm at a wavelength of about 580 nm, and a thermal expansion coefficient range of about 50 ppm/℃ to 70 ppm/℃.
    [Mathematical Equation 1]
    Rin = (nx-ny)×d
    [Mathematical Equation 2]
    Rth = (nz-ny)×d
    where nx is an in-plane refractive index of the film in a direction having a largest refractive index, ny is an in-plane refractive index of the film in a direction perpendicular to the nx direction, nz is a thickness refractive index, and d is a thickness of the film.
  18. The optical film of claim 14, wherein the optical film is a polarizing plate protective film.
  19. A polarizing plate comprising:
    a polarizer; and
    the optical film of claim 15 adhered to at least one side of the polarizer.
  20. The polarizing plate of claim 19, wherein a bending angle of the polarizing plate is about 150 degrees or less after left standing at 25℃ and 50% RH for 24 hours.
  21. An image display device comprising the optical film of claim 14.
PCT/KR2012/000667 2011-04-13 2012-01-30 Resin composition for optical film and optical film using the same Ceased WO2012141413A1 (en)

Priority Applications (3)

Application Number Priority Date Filing Date Title
US13/989,377 US9494712B2 (en) 2011-04-13 2012-01-30 Resin composition for optical film and optical film using the same
CN201280007965.2A CN103347952B (en) 2011-04-13 2012-01-30 Resin composition for optical film and optical film using the same
JP2013551907A JP5557303B2 (en) 2011-04-13 2012-01-30 Optical film resin composition and optical film using the same

Applications Claiming Priority (4)

Application Number Priority Date Filing Date Title
KR10-2011-0034441 2011-04-13
KR20110034441 2011-04-13
KR1020110085942A KR101269673B1 (en) 2011-04-13 2011-08-26 Resin composition for optical film and optical film using the same
KR10-2011-0085942 2011-08-26

Publications (1)

Publication Number Publication Date
WO2012141413A1 true WO2012141413A1 (en) 2012-10-18

Family

ID=47009541

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/KR2012/000667 Ceased WO2012141413A1 (en) 2011-04-13 2012-01-30 Resin composition for optical film and optical film using the same

Country Status (1)

Country Link
WO (1) WO2012141413A1 (en)

Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015075941A1 (en) * 2013-11-22 2015-05-28 株式会社カネカ Resin material and film thereof
US9803078B2 (en) 2013-11-29 2017-10-31 Kaneka Corporation Optical resin composition and film
US10578773B2 (en) 2013-11-29 2020-03-03 Kaneka Corporation Optical resin composition and film
US11066544B2 (en) 2013-12-25 2021-07-20 Kaneka Corporation Optical resin composition and molded article

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4874824A (en) * 1987-11-23 1989-10-17 Rohm And Haas Company Process for manufacturing low-acid, glutaric-anhydride-containing copolymers
EP0264508B1 (en) * 1985-05-02 1991-09-11 Sumitomo Chemical Company, Limited Process for the production of heat resistant thermoplastic copolymer
US20090275718A1 (en) * 2008-04-30 2009-11-05 Lg Chem, Ltd. Resin composition and optical films formed by using the same
KR20100104518A (en) * 2009-03-18 2010-09-29 주식회사 엘지화학 Acryl-based copolymer, optical film and liquid crystal display comprising the same

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP0264508B1 (en) * 1985-05-02 1991-09-11 Sumitomo Chemical Company, Limited Process for the production of heat resistant thermoplastic copolymer
US4874824A (en) * 1987-11-23 1989-10-17 Rohm And Haas Company Process for manufacturing low-acid, glutaric-anhydride-containing copolymers
US20090275718A1 (en) * 2008-04-30 2009-11-05 Lg Chem, Ltd. Resin composition and optical films formed by using the same
KR20100104518A (en) * 2009-03-18 2010-09-29 주식회사 엘지화학 Acryl-based copolymer, optical film and liquid crystal display comprising the same

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2015075941A1 (en) * 2013-11-22 2015-05-28 株式会社カネカ Resin material and film thereof
JPWO2015075941A1 (en) * 2013-11-22 2017-03-16 株式会社カネカ Resin material and film thereof
US10174191B2 (en) 2013-11-22 2019-01-08 Kaneka Corporation Resin material and film thereof
US9803078B2 (en) 2013-11-29 2017-10-31 Kaneka Corporation Optical resin composition and film
US10578773B2 (en) 2013-11-29 2020-03-03 Kaneka Corporation Optical resin composition and film
US11066544B2 (en) 2013-12-25 2021-07-20 Kaneka Corporation Optical resin composition and molded article

Similar Documents

Publication Publication Date Title
US9494712B2 (en) Resin composition for optical film and optical film using the same
US9346225B2 (en) Method of preparing resin composition for optical film by using continuous bulk polymerization and methods of preparing optical film and polarizing plate using the resin composition
WO2010079920A2 (en) Optical film and liquid crystal display device comprising the same
WO2009134097A2 (en) Resin composition and an optical film formed through use of the same
WO2009088239A2 (en) Optical film and electronic information device employing the same
WO2009134098A2 (en) Optical film, and an electronic information device comprising the same
CN105683783A (en) Resin composition for optical film, optical film formed using same, and polarizing plate and image display device comprising same
WO2010038995A2 (en) Optical film and method of preparing same
CN101903175A (en) Multilayer acrylic retardation film and preparation method thereof
WO2009148260A2 (en) Optical film and a production method therefor
WO2009088237A2 (en) Transparent resin composition
WO2012141413A1 (en) Resin composition for optical film and optical film using the same
WO2012002634A1 (en) Acryl-based copolymers and optical film including the same
KR20120009864A (en) Manufacture of Resin for Optical Film Using Acrylic Resin
WO2012141453A2 (en) Method of preparing resin composition for optical film by using continuous bulk polymerization and methods of preparing optical film and polarizing plate using the resin composition
JP5965621B2 (en) Optical film and manufacturing method thereof
KR20130018967A (en) Method for producing acryl-based copolymer for optical film and method for producing optical film using the same
JP2013148655A (en) Resin composition for optical film, and polarizer protective film and liquid crystal display comprising the same
WO2010062133A2 (en) Retardation film and a liquid-crystal display device comprising the same
US20140221571A1 (en) Resin composition and optical film formed using the same
US8623960B2 (en) Resin composition for optical film, and polarizer protective film and liquid crystal display including the same
TWI500685B (en) Resin composition for optical film and optical film using the same
WO2012165918A2 (en) Resin composition for optical film and optical film using the same
WO2012023834A2 (en) Highly heat resistant and highly strong acrylic copolymer, a resin composition comprising the same and an optical film and an ips mode liquid crystal display device comprising the same
WO2012141422A1 (en) Method for preparing acrylic copolymer resin for optical film and method for fabricating optical film using the same

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 12771914

Country of ref document: EP

Kind code of ref document: A1

ENP Entry into the national phase

Ref document number: 2013551907

Country of ref document: JP

Kind code of ref document: A

NENP Non-entry into the national phase

Ref country code: DE

WWE Wipo information: entry into national phase

Ref document number: 13989377

Country of ref document: US

122 Ep: pct application non-entry in european phase

Ref document number: 12771914

Country of ref document: EP

Kind code of ref document: A1