CN201266244Y - High translucent conductive film series - Google Patents

High translucent conductive film series Download PDF

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CN201266244Y
CN201266244Y CNU2008201405791U CN200820140579U CN201266244Y CN 201266244 Y CN201266244 Y CN 201266244Y CN U2008201405791 U CNU2008201405791 U CN U2008201405791U CN 200820140579 U CN200820140579 U CN 200820140579U CN 201266244 Y CN201266244 Y CN 201266244Y
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layer
film
transparency conducting
conducting film
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甘国工
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Abstract

The utility model discloses a high transparent conducting film system comprising a transparent substrate, an inorganic dielectric film layer of at least two layers of inorganic dielectric films, and a transparent conducting film layer, wherein the two layers of inorganic dielectric films which are formed by an inorganic dielectric film with high index of refraction and an inorganic dielectric film with lower index of refraction, which are alternatively arranged in sequence, are compounded on one surface of the transparent substrate in sequence; the transparent conducting film layer is compounded on the outmost layer of the inorganic dielectric film layer; the thickness of the transparent conducting film layer is a thickness of 8-60 nm which meets the requirement of a square resistor; and the entire transmission of the high transparent conducting film system can reach over 85 percent within the range with the optical wavelength of 380-780 nm. The utility model has high resistance stability and light transmission, is suitable for manufacturing high transparent conducting materials and is particularly suitable for the conducting materials made of base materials which can resist the temperature of below 200 DEG C.

Description

High-transparency conducting film system
Technical field:
The utility model relates to the high-transparency conducting film system with high permeability and high-durability, relates to the various touch-screens of using this film.
Background technology:
Normally directly directly sputter or conducting layer coated form the conductive film that traditional touch-screen is used on flexible parent metal.The transmitance of the conducting film of this mode is not high, so the picture that is arranged under the touch-screen is dark partially usually.Through after user's the repeatedly touch, conductive layer fracture easily causes resistance change, thereby causes getting an electric shock the position excursion that calculates or operate reactionless.In addition, the rete resistance value that the ITO conducting film forms about 300 ℃ is the most desirable, but because the temperature tolerance of most of flexible resin base materials has only about 150 ℃, causes the resistance of ITO conducting film side to reduce, so must increase the thickness of ITO, just can reach satisfied film side's resistance.When thickness increased, the rete transmitance must reduce, and then needs to introduce the optical design of optimization.
As application number is 02803118.0, name is called transparent conductive laminate and uses the patented claim of the transparent touch panel of this duplexer, a kind of conductive laminate film that obtains high printing opacity is disclosed, lamination optical interference layer successively at least one face of organic high molecular layer, transparency conducting layer, optical interference layer is made of high refractive index layer and low-index layer, and low-index layer is connected with transparency conducting layer, in the transparent conductive laminate that optical interference layer is made of cross-linked polymer, aforementioned optical interference layer contains the ultramicron A of primary particle size below 100nm that is made of metal oxide and/or metal fluoride, and/or high refractive index layer and low-index layer one of them contains average primary particle diameter at the thickness of optical interference layer more than 1.1 times at least, and the ultramicron B below 1.2 μ m, its content is below 0.5 weight % of cross-linked polymer.This patented claim discloses the method that forms optical interference layer with the mode of accurate coating between conductive film layer and flexbile base, but in fact, the mode equipment threshold height of accurate coating, poor stability, and form microcosmic island surface easily, cause hundreds of at least nm and even other surface undulation of μ m level, unevenness is irregular more or serious more more at most for Die Jia the number of plies simultaneously, cause the thickness of base transparency conducting layer thereon also inhomogeneous, seriously disturb the uniformity coefficient of resistance value.Secondly, the rete of coating method itself is macroscopical amorphous state in fact mostly, and the crystal grain of formation is all too little, a little less than the adhesion between tiny crystal particles, under the effect of external force deformation can take place, and is unfavorable for the stable performance of touch-screen.Consider in addition that rete Young modulus with accurate coating method is the highest and also have only several GPa, and majority is hundred MPa, and if this moment ito thin film be sputter preparation, Young modulus is at dozens or even hundreds of GPa, just as glass is placed on the sandy beach, the probability that ruptures during pressurized increases greatly; If conductive layer also prepares for coating method, as mentioned above, the permanance of itself is not high yet, deformation can take place under the effect of strong external force cause optical property and resistance variations.Secondly, the controllability of accurate coating method is very poor, is difficult to accomplish the fine setting of thickness, and will to make the following homogeneous film of 50nm almost be impossible, and in these areas, magnetron sputtering has embodied great advantage.Once more, be doped with ultramicron at optical interference layer, do the mist degree that can increase touch-screen like this, reduce the sharpness of image as this application is described.
And for example application number 200580012780.0, name is called the application of transparent conductive laminate and touch-screen, this application discloses a kind of transparent conductive laminate, at thickness is a side surface of the transparent membrane base material of 2~120 μ m, according to the first transparent thin dielectric film, the second transparent thin dielectric film and the order of transparent conducting film stack gradually, another surface at described film substrate, closing transparent base by the transparent adhesives laminating forms, second thin dielectric film is the potpourri of inorganics or organism and inorganics, form the potpourri of above-mentioned conductive membrane, form in the crystallization of above-mentioned conductive membrane material, maximum particle diameter is that 300nm or littler crystalline content surpass 50 area %.Described transparent conductive laminate satisfies the crooked pen input permanance as touch-screen to heavens, but the great number of issues that faces coating method (as previously described) too.The film of coating method is an amorphous state simultaneously, and magnetron sputtering is homogeneously crystallized form.The size of known conductive crystal grain is big more, size of microcrystal distributes even more, film integral electric conductivity is good more stable more, so the rete electric conductivity of coating method and homogeneity are not as the rete of magnetron sputtering, if reach identical sheet resistance value, the thickness of coating conducting film is greater than the thickness of sputter conducting film, and higher thickness has increased the light absorption of material undoubtedly and reduced whole transmitance, and has reduced film strength.What deserves to be mentioned is, the last part embodiment of this application also gives up coating method, the migrate electron beam evaporation deposition method of PVD, but the rete fastness height that the film adhesion that the electron beam evaporation deposition method forms forms not as magnetron sputtering, compactness is good, good uniformity, to be evaporated to the material on the base material be not ionization to the electron beam evaporation deposition method in addition, so can't the realization response plated film, and magnetically controlled sputter method can the realization response sputter, obtain the high metal oxide materials of refractive index as sputtered with Ti metal or Nb and oxygen reaction, and for example the reaction of sputter Si and nitrogen generates Si 3N 4, or generate SiO with oxygen reaction 2, and the high transmissive optical film of high index of refraction that forms like this and low-refraction collocation is.
Application number 200820052006.3 for another example, and name is called flexible high-resistance multi-layer transparent conductive film, and this patented claim discloses the TiO that is formed with the antireflection function on base material earlier with magnetron sputtering technique 2Layer and SiO 2On this antireflection layer, deposit indium tin oxide layer (ITO layer); the protective seam Zinc-aluminium layer or the zinc gallium oxide layer (ZAO layer or ZGO layer) that deposit on the ITO layer the ITO layer are top layer again; what this technical scheme was emphasized is deposition ITO layer on flexible parent metal; it is high to be difficult to obtain stability; good endurance; the ITO conducting film that high-temperature stability is good; in addition if on flexible parent metal, directly deposit the ITO layer; because base material such as PET film are easy to adsorb steam; oxygen; the film surface ratio is more coarse in addition; the steam of film surface adsorption; oxygen is easy to the ITO rete diffusion that is deposited on the PET film, and the infiltration diffusion very easily makes ITO stability change.So this scheme is had in mind the ITO film is protected, is strengthened protection in the face of it from ITO film two, and the PET film between, increased TiO 2With SiO 2Two-layer anti-reflection and separation layer, increasing top layer at the ITO outermost layer is ZAO or GZO layer, this top layer is Al-Doped ZnO or gallium-doped zinc oxide, also is for the high-temperature stability from outer protection ITO layer, though spoken of TiO 2And SiO 2Layer the anti-reflection effect here, but not with two-layer at least TiO 2And SiO 2Arrange in pairs or groups and design from optical design with the ITO layer, disclosed thicknesses of layers is such as TiO 2Layer is 120nm, SiO 2Layer is 95nm, also only gives conceptual design from insulation blocking, not optical design, and, make optical design become complicated because of top layer ZAO or GZO rete are arranged, do not have obvious anti-reflection result, from TiO 2And SiO 2The thickness public information is calculated, also not from the better anti-reflection scheme of the anti-reflection proposition of optics, and touch-screen is except having higher requirements to ITO electric conductivity and stability, also have high requirements for high light transmittance and scratch resistance, soil resistance, this relates to the economize on electricity of lcd screen and brightness value, these important performances of scratch resistance, therefore needs two-layer at least TiO 2And SiO 2Carry out conceptual design and optimization with ITO from anti-reflection blooming and collocation, need the design and the creation of making improvements property on this scheme basis, and need to go to improve and improve anti-reflection antireflection and improve skin hardness and scratch resistance, performance such as antifouling from the base material another side.
Summary of the invention:
The purpose of this utility model is in order to overcome above deficiency, a kind of conducting film system with high permeability and high-durability to be provided.
The purpose of this utility model realizes like this:
The utility model high-transparency conducting film system, comprise transparent base layer, compound successively on a surface of transparent base layer by be staggered the successively inorganic medium rete of the two-layer at least inorganic dielectric film that forms of high index of refraction inorganic dielectric film, low-refraction inorganic dielectric film, be compound in the outermost transparent conductive film layer of inorganic medium rete, the thickness of transparent conductive film layer is the thickness 8~60nm that satisfies the square resistance needs, and high-transparency conducting film system whole transmitance in 380nm~780nm optical wavelength range reaches more than 85%.At least the method deposition that two-layer inorganic medium rete that is made of high index of refraction inorganic dielectric film and low-refraction inorganic dielectric film and transparent conductive film layer all adopt vacuum magnetic-control sputtering, reach high-transparency conducting film system 85% or more thereby be formed on whole transmitance in 380nm~780nm optical wavelength range, promptly optical interference coating is.Because the transparent conductive film layer that obtains of magnetron sputtering is a nano thickness, the transparent conductive film layer of sputter is also taken into account in the optics design, can obtain that approximate antireflection is anti-reflection penetrates the effect of (AR) film system.Utilize magnetically controlled sputter method, can accomplish to meet more the film system of theoretical optics design, because the rete densification of its preparation, stable, the refractive index of material and mechanical property be stablize reproducible, the plated film precision also can be controlled at below the 1nm, the film thickness scope also by several nm to hundreds of nm, so the yield rate height, the performance properties of product are stable.The nesa coating that uses magnetically controlled sputter method to obtain, compare coating method and evaporation plating mode, have higher particle ionization level, higher thin film crystallization degree of uniformity can obtain better film conductance, surface resistance, intensity and stability.
Above-mentioned high-transparency conducting film system, transparent base layer are glass plate or resin plate.
Above-mentioned high-transparency conducting film system, transparent base layer are flexible resin film.
Above-mentioned high index of refraction inorganic dielectric film is titanium dioxide (TiO 2) or niobium oxide (Nb 2O 5).
Above-mentioned high index of refraction inorganic dielectric film thickness range 6 to 50nm, refractive index is greater than 2.0, low-refraction inorganic medium film thickness 20 to 150nm, refractive index is less than 1.55, the nesa coating layer thickness is 8 to 60nm, refractive index 1.7 to 2.0, and high refractive index medium is preferably titanium dioxide (TiO 2) or niobium oxide (Nb 2O 5), thickness is 7~30nm, low refractive index dielectric is preferably monox (SiO 2), thickness is 30~130nm, transparent conductive film layer is 8 to 60nm, be preferably and mix indium tin oxide (ITO), thickness is 10~40nm, and by adjusting, whole transmitance can reach 87%~91%, if another surface in flexible and transparent basic unit is coated with anti-reflection film system, transmitance can reach 90%~95%.
The Young modulus of above-mentioned two-layer at least inorganic medium rete that is made of high index of refraction and low-refraction light transmission medium and transparency conducting film layer is greater than 15GPa; owing to selected the basal layer of the inorganic medium rete of high Young's modulus for use as transparent conductive film layer; can utilize the hardness and the intensity of each inorganic medium rete to protect transparent conductive film layer, the intensity of transparent conductive film layer and life-span are further improved.
Above-mentioned transparency conducting film layer is indium oxide, tin oxide, zinc paste, the tin oxide (ATO) of the tin oxide of the indium that mixed (ITO), the antimony that mixed, mix the rete of at least a composition in the zinc paste (AZO) of aluminium.
Above-mentioned high-transparency conducting film system, when the refractive index of transparent base layer is n1, the inorganic dielectric film refractive index of high index of refraction is that the inorganic dielectric film refractive index of n2, low-refraction is the refractive index of n3, transparent conductive film layer when being n4, satisfies n2〉n1 or n2〉n3 or n4〉n1 or n4〉n3.
Above-mentioned high-transparency conducting film system is at the two-layer at least TiO of another surface deposition of transparent base layer 2With SiO 2, or Nb 2O 5With SiO 2The anti-reflection antireflection film layer that forms.
Above-mentioned high-transparency conducting film system at the anti-reflection antireflection film layer outermost layer of another surface recombination of transparent base layer, utilizes lower temperature plasma technology to be compounded with one deck anti-scratch, antifouling organosilicone film.This anti-scratch, antifouling organosilicone film have increased the scratch-proofness and the lubricity of antireflection layer, are generally that not influence this thickness of its optical design be 3 to 20nm, because this material refractive index is between 1.4 to 1.5, with SiO 2Refractive index is identical, also can in optical design this film thickness gauge be counted SiO 2In the gross thickness, this organosilicone film deposits with the high density nonthermal plasma chemistry CVD (Chemical Vapor Deposition) method of radio frequency aura or microwave glow discharge, deposit such as monomer with HMDO, existing open proven technique, production cost economy not only, the film of deposition have well anti-stroke and lubricity.
Above-mentioned high-transparency conducting film system, transparent base layer another the surface and anti-reflection antireflection film layer between have one deck and transparent base layer firmly to be laminated with organic hard conating that increases.This organic hard formation that increases has greater than 3H pencil scratch hardness anti-reflection antireflection film layer, increases the scratch-proofness energy of this film, and this coating is used acrylic acid resin, adopts dual-component polyurethane bonding and/or process for photocuring production, and existing maturation method is open.
It is very ripe to prepare film with (Roll to Roll) the vacuum magnetic-control sputtering equipment of coiling at present, the production efficiency height, and stability is high, has very strong controllability.The film of sputter has been a ubiquitous film type on the market, the Young modulus of film is at dozens or even hundreds of GPa, the rete majority of sputter mode is fine and close firm crystalline state, and than theoretical conductance and the refractive index of coating method near crystal, physics and chemical property are all more excellent.Therefore, the utility model adopts the vacuum magnetic-control sputtering technology, particularly comes the depositing electrically conductive film with (Roll to Roll) the vacuum magnetic-control sputtering technology of coiling and the optical film of the inorganic medium rete formation that is mated is made a kind of conducting film of high printing opacity.
The utility model has improved the light transmission of conducting film more accurately, the rete that utilizes the vacuum magnetic-control sputtering method to obtain has simultaneously improved its intensity and stability, improved the performance and the uniformity coefficient of transparent conductive film layer, satisfied touch screen pen to heavens and import permanance, optical stability and serviceable life.
Description of drawings:
Fig. 1 is the high-transparency conducting film system structural representation.
Fig. 2 is high-transparency conducting film system transmittance curve Fig. 1.
Fig. 3 is high-transparency conducting film system transmittance curve Fig. 2.
Fig. 4 high-transparency conducting film system transmittance curve Fig. 3.
Fig. 5 high-transparency conducting film system transmittance curve Fig. 4.
Distortion synoptic diagram when Fig. 6 pushes for nib.
Fig. 7 is another structural representation of high-transparency conducting film system.
Embodiment:
Embodiment 1:
Fig. 1 has provided the high-transparency conducting film system structural drawing of present embodiment 1, referring to Fig. 1, the L of flexible and transparent basic unit is the PET film L of 125 μ m, thereby utilize the vacuum magnetic-control sputtering deposition to be formed on the optical interference coating that whole transmitance reaches 85% or more in 380nm~780nm optical wavelength range by high index of refraction inorganic dielectric film and the film formed inorganic medium rete of low-refraction inorganic medium and transparent conductive film layer is.Lip-deep one deck high refractive index medium film 3 at the PET film of 125 μ m is TiO 2, one deck low refractive index dielectric film 2 is SiO 2, transparent conductive film layer 1 is for mixing indium tin oxide (ITO) rete.The thickness of this triple-layer coating layer is as shown in table 1.High printing opacity (AR) film that the upper surface of the PET film L of 125 μ m adopts the vacuum magnetic-control sputtering method to be coated with four layers of medium is 5, and they are TiO 2(thick 8nm)/SiO 2(thick 30nm)/TiO 2(thick 30nm)/SiO 2(thick 90nm) is also to utilize the nonthermal plasma chemistry gas phase deposition technology to deposit one deck organosilicon rete 6 above 5 at film, and thickness is 10nm, and this film has high lubricity and scratch-proofness.Between rete 5 and base material L, the organic hard conating 4 that increases of one deck is arranged, this tunic adopts coating method to deposit on base material, be acrylic resin, adopt the process for photocuring film forming,, can make the surface reach 3H pencil scratch hardness so that rete 5 and 6 has higher anti-zoned property and hardness.
The transmittance curve of use spectrophotometer measurement high-transparency conducting film system such as Fig. 2~shown in Figure 5.
Table 1
Numbering TiO2 thickness (nm) SiO2 thickness (nm) ITO thickness (nm)
a 9 102 11
b 8~11 80~90 10~20
c 10 90 15
D 11 95 20
As can be seen, the thickness of adjusting each rete has the ability to transmittance curve control from Fig. 2~Fig. 5, if ITO thickness as required sheet resistance value and determined TiO 2And SiO 2The thickness of rete is to adjust as required, obtains one group of optimized one-tenth-value thickness 1/10, and can have very high transmitance.Certainly, the upper surface of soft light basic unit also can print high anti-dazzle (AG) coating of scratch-proofness, and does not adopt silicone layer.
Fig. 6 is the distortion synoptic diagram of film when pushing.As can be seen from Figure 6, the dielectric layer 2 and 3 with similar hardness can be protected it.This conducting film is tested result such as table 2.Measuring method is as follows:
(1) surface measurements resistance:
Measure some points with four point probe surface resistance testing tool, represent with mean value.
(2) characteristic is got in measurement ready:
Initial resistance Ro when the touch-screen upper substrate that measurement earlier is made of composite conductive film contacts with following electrically-conductive backing plate, the touch-screen upper substrate side that constitutes at composite conductive film again, using hardness is the rod that contains urethane rubber (most advanced and sophisticated 7mm) of 40 degree, the center of carrying out 1,000,000 times with load 100g is got ready, resistance R d when measuring the contact of two conducting films then, obtain rate of change (Rd/Ro) * 100%, estimate and get characteristic ready, represent with mean value.
(3) measure high load capacity pen input permanance:
1.: use the pen (nib 0.8mm) that contains polyacetal, 500g carries out 300,000 times slip with load, and linear change is measured in the back of sliding.
Linear mensuration: the voltage that on composite conductive film, applies 5V, measure the voltage of 2 of A, B in the composite conductive film, be respectively Ea, Eb, 2 distances of A, B are AB, the output voltage of measuring point X is made as Ex arbitrarily between A, B, theoretical value is made as Ep, and the distance between the AX is x, can get linear change by following formula:
Ep=[x+ (Ea-Eb)/AB]+Ea linear change (%)=[(Ep-Ex)/(Eb-Ea)] * 100%
2. use the pen (nib 0.8mm) contain polyacetal, carry out 100,000 times slip, obtain linear change and be 1.5% peak load with various loads.
Table 2:
Figure Y200820140579D00091
Can find that such composite conductive film has good visible light transmissive ability, also have very strong pen input permanance simultaneously.
Embodiment 2:
Fig. 7 has provided present embodiment 2 composite conductive film structural drawing.Referring to Fig. 7, present embodiment 2 basic with embodiment 1 with, as different from Example 1, can being staggered by the inorganic dielectric film 2 of the inorganic dielectric film 3 of multilayer high index of refraction and low-refraction, to constitute film be that its each tunic thickness is: PET (thick 175 μ m)/TiO 2(thick 9nm)/SiO 2(thick 36nm)/TiO 2(thick 30nm)/SiO 2(thick 110nm)/ITO (thick 20nm), surface resistance 450 Ω/ also can reach very high transmitance, can reach 93% transmittance.The advantage of assembly of thin films is to reduce the annoyance level of plated film to the transmitted light color.
The various embodiments described above are that foregoing of the present utility model is further described, but this should be interpreted as that the scope of the above-mentioned theme of the utility model only limits to the foregoing description.All technology that realizes based on foregoing all belong to scope of the present utility model.

Claims (10)

1. high-transparency conducting film system, it is characterized in that comprising transparent base layer, compound successively on a surface of transparent base layer by be staggered the successively inorganic medium rete of the two-layer at least inorganic dielectric film that forms of high index of refraction inorganic dielectric film, low-refraction inorganic dielectric film, be compound in the outermost transparent conductive film layer of inorganic medium rete, the thickness of transparent conductive film layer is the thickness 8~60nm that satisfies the square resistance needs, and high-transparency conducting film system whole transmitance in 380nm~780nm optical wavelength range reaches more than 85%.
2. high-transparency conducting film system as claimed in claim 1 is characterized in that transparent base layer is glass plate or resin plate.
3. high-transparency conducting film system as claimed in claim 1 is characterized in that transparent base layer is a flexible resin film.
4. high-transparency conducting film system as claimed in claim 1 is characterized in that the high index of refraction inorganic dielectric film is titanium oxide layer or niobium oxide layer.
5. as the described high-transparency conducting film system of one of claim 1~4, it is characterized in that high index of refraction inorganic medium film thickness 10 to 80nm, refractive index is greater than 2.0, low-refraction inorganic medium film thickness 20 to 150nm, refractive index less than 1.55, the nesa coating layer thickness is 8 to 60nm, refractive index 1.7 to 2.0.
6. as the described high-transparency conducting film system of one of claim 1~4, it is characterized in that transparent conductive film layer is the rete of at least a composition among indium oxide, tin oxide, zinc paste, ITO, ATO, the AZO.
7. as the described high-transparency conducting film system of one of claim 1~4, it is characterized in that the refractive index when transparent base layer is n1, the inorganic dielectric film refractive index of high index of refraction is that the inorganic dielectric film refractive index of n2, low-refraction is the refractive index of n3, transparent conductive film layer when being n4, satisfies n2〉n1 or n2〉n3 or n4〉n1 or n4〉n3.
8. as the described high-transparency conducting film system of one of claim 1~4, it is characterized in that at the two-layer at least TiO of another surface recombination of transparent base layer 2With SiO 2Or Nb 2O 5With SiO 2The anti-reflection antireflection film layer that forms.
9. high-transparency conducting film system as claimed in claim 8 is characterized in that anti-reflection antireflection film layer outermost layer in another surface recombination of transparent base layer has one deck anti-scratch, antifouling organosilicone film.
10. high-transparency conducting film system as claimed in claim 8 or 9 is characterized in that the organic hard conating that increases that has one deck and transparent base layer firmly to be laminated with between another surface of transparent base layer and anti-reflection antireflection film layer.
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Cited By (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102211436A (en) * 2010-04-02 2011-10-12 素塔电子科技(上海)有限公司 Anti-blocking film with high hardness and preparing method thereof
CN102830876A (en) * 2012-08-15 2012-12-19 南京汇金锦元光电材料有限公司 Capacitive touch screen with flexible transparent conductive film and production method thereof
CN104335077A (en) * 2012-03-08 2015-02-04 保谷透镜制造菲律宾股份有限公司 Optical element and optical element manufacturing method
CN105585253A (en) * 2016-02-02 2016-05-18 深圳新晶泉技术有限公司 Antireflection coating glass and preparation method thereof
CN109704596A (en) * 2019-03-01 2019-05-03 昆山福钻新材料科技有限公司 A kind of antireflective conductive film of index matching and preparation method thereof
CN110268800A (en) * 2017-02-07 2019-09-20 捷温有限责任公司 The conductive film of energy
CN111033319A (en) * 2017-09-29 2020-04-17 日本电产株式会社 Lens, lens unit, and image pickup apparatus
US11269474B2 (en) 2020-04-28 2022-03-08 Beijing Zenithnano Technology Co., Ltd Touch devices
US11269466B2 (en) 2020-04-28 2022-03-08 Beijing Zenithnano Technology Co., Ltd. Touch panels

Cited By (14)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN102211436A (en) * 2010-04-02 2011-10-12 素塔电子科技(上海)有限公司 Anti-blocking film with high hardness and preparing method thereof
CN104335077B (en) * 2012-03-08 2016-06-01 Ehs透镜菲律宾股份有限公司 The manufacture method of optical component and optical component
US9535262B2 (en) 2012-03-08 2017-01-03 Ehs Lens Philippines, Inc. Optical member and method of manufacturing optical member
CN104335077A (en) * 2012-03-08 2015-02-04 保谷透镜制造菲律宾股份有限公司 Optical element and optical element manufacturing method
CN102830876B (en) * 2012-08-15 2015-10-21 南京汇金锦元光电材料有限公司 A kind of capacitance touch screen with flexible transparent conductive film and preparation method thereof
CN102830876A (en) * 2012-08-15 2012-12-19 南京汇金锦元光电材料有限公司 Capacitive touch screen with flexible transparent conductive film and production method thereof
CN105585253A (en) * 2016-02-02 2016-05-18 深圳新晶泉技术有限公司 Antireflection coating glass and preparation method thereof
CN110268800A (en) * 2017-02-07 2019-09-20 捷温有限责任公司 The conductive film of energy
CN110268800B (en) * 2017-02-07 2021-11-26 捷温有限责任公司 Film capable of conducting electricity
CN111033319A (en) * 2017-09-29 2020-04-17 日本电产株式会社 Lens, lens unit, and image pickup apparatus
CN111033319B (en) * 2017-09-29 2022-03-04 日本电产株式会社 Lens, lens unit, and image pickup apparatus
CN109704596A (en) * 2019-03-01 2019-05-03 昆山福钻新材料科技有限公司 A kind of antireflective conductive film of index matching and preparation method thereof
US11269474B2 (en) 2020-04-28 2022-03-08 Beijing Zenithnano Technology Co., Ltd Touch devices
US11269466B2 (en) 2020-04-28 2022-03-08 Beijing Zenithnano Technology Co., Ltd. Touch panels

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