Intelligent optical film system with adjustable light transmittance and method

By combining lens units and polarization units, and utilizing electrochromic materials and adjustment modules, rapid and stable adjustment of the transmittance of optical films was achieved, solving the problem of the inability to adjust the transmittance of traditional optical films and improving response speed and cycle stability.

CN121348628AActive Publication Date: 2026-01-16中科宝溢视觉科技(江苏)有限公司
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Patent Information

Application Number
CN202511901131.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-12-16
Publication Date
2026-01-16
Estimated Expiration
2045-12-16

AI Technical Summary

Technical Problem

Traditional optical films have non-adjustable transmittance, slow response speed, and poor cycle stability, making them difficult to adapt to dynamic lighting environments.

Method used

By combining lens units and polarization units, and through polarizing mirrors and optical film structures, along with electrochromic materials and adjustment modules, the transmittance is adjusted according to the external light intensity and temperature by utilizing the migration of lithium ions within the strip channel.

Benefits of technology

It achieves rapid and stable adjustment of light transmittance, with fast response speed, good cycle stability, and adaptability to dynamic lighting environments.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of optical films, in particular to an intelligent optical film system with adjustable light transmittance and a method. The technical scheme comprises a lens unit; the polarization unit is arranged on one side of the lens unit; the polarization unit comprises a polarizer, an optical film structure is arranged on the surface of the polarizer, and the optical film structure comprises a substrate layer, a functional layer and a protective layer which are sequentially pressed and formed; and the adjusting module is connected with the polarizer and can adjust the light transmittance of the functional layer according to an external control signal. Through a functional layer arranged in the optical film system, a transparent electrode layer and an electrochromic layer in the corresponding functional layer and an adjusting module arranged in a matched mode, the magnitude of voltage correspondingly connected to the electrochromic layer can be adjusted according to the external illumination intensity or actual requirements, and lithium ions rapidly move in a strip-shaped channel, so that the electrochromic effect is improved. And rapid adjustment of the light transmittance is realized.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of optical film, in particular to a smart optical film system and method with adjustable light transmittance. BACKGROUND

[0002] The optical film system is a technology system for regulating light wave characteristics through multiple layers of dielectric film, and its core principle is based on the interference effect of light. By accurately designing the thickness and refractive index of the film layer, the optimization of reflection, transmission, polarization and other functions is achieved. It is commonly used in image systems and display technology. Traditional optical films (such as polarizing films and anti-reflection films) use fixed film system design, and the light transmittance cannot be adjusted, which makes it difficult to meet the needs of dynamic lighting environment. The commonly used electrochromic film adjusts the refractive index to achieve the adjustment of light transmittance, but its response speed is slow due to the dependence on ion migration mechanism, and the cycle stability is poor. SUMMARY

[0003] The purpose of the present application is to solve the problems in the background art, and to provide an optical film system and method with fast and stable adjustment of light transmittance.

[0004] The technical scheme of the present application is a smart optical film system with adjustable light transmittance, which comprises: a lens unit; and a polarization unit arranged on one side of the lens unit, which is used to separate or synthesize the light beam passing through the optical lens; The polarization unit includes a polarizing mirror, and the surface of the polarizing mirror is provided with an optical film structure, which includes a substrate layer, a functional layer and a protective layer which are successively pressed and formed. The substrate layer is a high transparent polyester film layer, and the protective layer is a polymethylsiloxane coating. Further comprising an adjusting module connected with the polarizing mirror, which can adjust the light transmittance of the functional layer according to the external control signal. The adjusting module includes a voltage control module for controlling the voltage of the two electrodes of the electrochromic material. Optionally, the functional layer includes two transparent electrode layers and an electrochromic layer located at the middle position of the two transparent electrode layers. One of the transparent electrode layers is located at the lower side of the high transparent polyester film layer, and the other transparent electrode layer is located at the upper side of the polymethylsiloxane coating.

[0005] Optionally, the surface of the high transparent polyester film is treated by plasma, and the thickness of the high transparent polyester film is less than 200 microns. The electrochromic material is selected from spiro-pyran compounds, and the nano-silicon nitride modified by n-octyl trimethoxysilane is used as the conductive medium.

[0006] Optionally, the transparent electrode layer is made of indium tin oxide, and a plurality of strip channels are provided on the side of the transparent electrode layer near the electrochromic layer, the strip channels being filled with liquid crystal polymer.

[0007] Optionally, the electrochromic layer is bonded between the middle of the two transparent electrode layers, and the electrochromic layer is made of tungsten trioxide and lithium-ion doped polymer, which changes the light transmittance through redox reaction under the action of an electric field.

[0008] Optionally, under the action of an electric field, lithium ions in the electrochromic layer can migrate within the strip channels to ensure uniform color change.

[0009] Optionally, the polymethylsiloxane coating comprises polyolefin and PET resin, prepared by a sol-gel method, using a stacking and pressing process to lay the polyolefin and PET resin in layers and alternately stack and press them together.

[0010] Optionally, a silicon dioxide transition layer is provided between the electrochromic layer and the transparent electrode layer, and a plurality of through holes are uniformly formed on the silicon dioxide transition layer, and the through holes and the strip channel are staggered.

[0011] Optionally, the adjustment module includes a sensor unit, which includes a light sensor and a temperature sensor. The light sensor is used to collect the ambient light intensity where the optical film system is located, and the temperature sensor is used to collect the ambient temperature where the optical film system is located.

[0012] A method for adjusting the transmittance of a smart optical film system includes the following steps: S1. By setting the control module, the light sensor in the sensor unit uses the light intensity of the current external environment, and matches the voltage in the corresponding drive circuit with the corresponding light intensity. The drive circuit outputs the corresponding voltage value to the transparent electrode layer. S2. When a voltage is applied to the transparent electrode layer, the electrochromic layer can undergo an oxidation-reduction reaction under the action of an electric field, and the corresponding lithium ions can migrate in the strip channel, thereby changing the light transmittance of the optical film system.

[0013] In summary, this application includes at least one of the following beneficial technical effects: This invention, through the functional layer set in the optical film system, and the transparent electrode layer and electrochromic layer in the corresponding functional layer, together with the set adjustment module, can adjust the voltage connected to the electrochromic layer according to the external light intensity or actual needs, and achieve rapid adjustment of light transmittance through the rapid movement of lithium ions in the strip channel. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the overall structure of the optical film system of the present invention; Figure 2 This is a side view schematic diagram of the overall layered structure of the optical film on the polarizing mirror of the present invention; Figure 3 This is a side view of the overall layered structure of the functional layer of the present invention; Figure 4 This is a top view of the functional layer structure of the present invention; Figure 5 This is a side view of the silicon dioxide transition layer structure of the present invention; Figure 6 This is a schematic diagram of the process for adjusting the transmittance of the optical film system of the present invention.

[0015] Reference numerals: 1. Substrate layer; 2. Functional layer; 21. Transparent electrode layer; 211. Strip channel; 22. Electrochromic layer; 3. Protective layer; 4. Silica transition layer; 41. Through hole. Detailed Implementation

[0016] The technical solution of this application will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0017] The components of the embodiments of this application described and shown in the accompanying drawings can be arranged and designed in a variety of different configurations. Therefore, the following detailed description of the embodiments of this application provided in the drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application.

[0018] Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0019] In the description of this application, it should be noted that the terms "upper," "lower," "inner," "outer," "front end," "rear end," "both ends," "one end," and "the other end," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings, and are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and therefore should not be construed as a limitation of the present invention. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance.

[0020] In the description of this application, it should be noted that, unless otherwise expressly specified and limited, the terms "installation," "connection," and "linking" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection between two components. Those skilled in the art can understand the specific meaning of the above terms in this application based on the specific circumstances.

[0021] Example 1: Refer to Appendix Figures 1-5 As shown, the intelligent optical film system with adjustable transmittance proposed in this invention includes a lens unit; and a polarization unit disposed on one side of the lens unit, the polarization unit being used to separate or combine light beams passing through the optical lens; in this application, the optical film system can be applied in multiple fields, regarding light transmission, in this application, refer to the appendix Figure 2 The image shows an optical model designed for the transmission of light, corresponding to the attached... Figure 5 In this context, the polarizing mirror is a part of the polarizing unit. Specifically, the polarizing unit includes the polarizing mirror, and the surface of the polarizing mirror is provided with an optical film structure. The optical film structure includes a base layer 1, a functional layer 2, and a protective layer 3, which are sequentially laminated together. The base layer 1 is a highly transparent polyester film layer; the functional layer 2 includes a transparent electrode layer 21 and an electrochromic layer 22; and the protective layer 3 is a polymethylsiloxane coating. (See attached diagram.) Figure 2 As shown in the figure, in this application, the light transmittance of the functional layer 2 can be changed by passing electricity through the functional layer 2, so that the optical film system can be applied in different fields, such as automobile windshields or building exterior walls.

[0022] Furthermore, in this application, the surface layer of the optical film structure is a highly transparent polyester film layer. A transparent electrode layer 21 is disposed below the highly transparent polyester film layer, and a transparent electrode layer 21 is also disposed above the polymethylsiloxane coating. An electrochromic layer 22 is disposed between the middle of the two transparent electrode layers 21. Through the layered structure design, when external light passes through the optical film system, it passes through the optical film structure. Correspondingly, by changing the transmittance of the functional layer 2, the transmittance of the polarizing mirror can be further changed, thereby achieving adjustment of the transmittance of the optical film system.

[0023] Specifically, in this application, the surface of the high-transparency polyester film is plasma-treated, and the thickness of the high-transparency polyester film is less than 200 μm. The electrochromic material is a spiropyran compound, and nano-silicon nitride modified with n-octyltrimethoxysilane is used as the conductive medium. The surface layer of the optical film structure is a high-transparency polyester film layer, beneath which a transparent electrode layer 21 is disposed. Another transparent electrode layer 21 is also disposed above the polymethylsiloxane coating 3, and an electrochromic layer 22 is sandwiched between the two transparent electrode layers 21. The high-transparency polyester film layer is plasma-treated to enhance its surface properties, and the thickness of this film layer is strictly controlled within the range of less than 200 μm to ensure stable optical performance. The functional layer, which improves the adhesion of subsequent coatings, is composed of alternating electrochromic units and liquid crystal polymers. The electrochromic material is a spiropyran compound, and nano-silicon nitride modified with n-octyltrimethoxysilane is used as the conductive medium, with its sheet resistance controlled within the range of 10-1000 / sq.

[0024] Furthermore, the electrochromic layer 22 uses a spiropyran compound as the color-changing material, which can undergo a significant change in transmittance under the action of an electric field. At the same time, nano-silicon nitride modified with n-octyltrimethoxysilane is used as a conductive medium, which improves the conductivity and cycling stability of the electrochromic layer 22.

[0025] In one embodiment, the transparent electrode layer 21 in this application is made of indium tin oxide (ITO), and multiple strip-shaped channels 211 are provided on the side of the transparent electrode layer 21 near the electrochromic layer 22. The strip-shaped channels 211 are filled with liquid crystal polymer. The transparent electrode layer 21 uses ITO, which not only has good conductivity but also high transparency. The multiple strip-shaped channels 211 on the side of the transparent electrode layer 21 near the electrochromic layer 22, filled with liquid crystal polymer, guide the migration path of lithium ions under the action of an electric field, ensuring the uniformity of the electrochromic process. Simultaneously, the liquid crystal polymer filled in the strip-shaped channels 211 ensures efficient movement of lithium ions, thereby effectively improving the efficiency of transmittance adjustment.

[0026] The electrochromic layer 22 is bonded between the two transparent electrode layers 21, and its material is tungsten trioxide and lithium-ion-doped polymer. Under the influence of an electric field, it changes its light transmittance through a redox reaction. The electrochromic layer 22 is also tightly bonded between the two transparent electrode layers 21, and its material is tungsten trioxide and lithium-ion-doped polymer. This combination allows the electrochromic layer 22 to rapidly change its light transmittance through a redox reaction under the influence of an electric field.

[0027] Specifically, in this application, under the action of an electric field, lithium ions in the electrochromic layer 22 can migrate within the strip channel 211, ensuring uniform color change. Under the action of an electric field, lithium ions in the electrochromic layer 22 can migrate orderly within the strip channel 211; this design ensures the uniformity and rapid response of the color change process. The polymethylsiloxane coating 3 is composed of polyolefin and PET resin, prepared using the widely used sol-gel method. The aforementioned sol-gel method is existing technology and will not be elaborated upon in this application. A robust and transparent protective layer is formed by layering and pressing polyolefin and PET resin through a stacking and pressing process.

[0028] Specifically, in this application, the polymethylsiloxane coating comprises polyolefin and PET resin, prepared using a sol-gel method. A stacking and pressing process is employed, in which the polyolefin and PET resin are layered and alternately stacked and pressed. This can be understood as a multi-layered composite structure, primarily comprising two layered structures: polyolefin and PET resin. These two layered structures are sequentially stacked and pressed together, with the final thickness maintained between 0.5-0.8 mm. This effectively increases the thickness of the protective layer, thereby protecting the overall stability of the optical film system's layered structure.

[0029] See attached document Figure 4 As shown in the diagram, furthermore, in this application, a silicon dioxide transition layer 4 is provided between the electrochromic layer and the transparent electrode layer, and a plurality of through holes 41 are uniformly formed on the silicon dioxide transition layer 4, with the through holes 41 and the strip channel 211 being staggered. In addition, a silicon dioxide transition layer 4 is also provided between the electrochromic layer 22 and the transparent electrode layer 21, and a plurality of through holes 41 are uniformly formed on this layer, with these through holes 41 and the strip channel 211 being staggered to further optimize the migration path of lithium ions and the uniformity of the electrochromic process.

[0030] Specifically, the adjustment module includes a sensor unit, which comprises a light sensor and a temperature sensor. The light sensor is used to collect the ambient light intensity of the optical film system, and the temperature sensor is used to collect the ambient temperature of the optical film system. As a key part of this invention, the adjustment module includes the sensor unit, which is further subdivided into a light sensor and a temperature sensor. The light sensor is responsible for collecting the real-time light intensity of the environment in which the optical film system is located, while the temperature sensor is used to monitor the ambient temperature to ensure that the optical film system maintains stable performance under different temperature conditions. Through real-time data feedback from these sensors, the adjustment module can precisely control the voltage applied to the two electrodes of the electrochromic material, thereby achieving rapid and stable adjustment of the light transmittance of the optical film system. It also includes an adjustment module connected to a polarizing mirror, which can adjust the light transmittance of the functional layer according to external control signals. This adjustment module includes controlling the voltage applied to the two electrodes of the electrochromic material.

[0031] As one implementation method, in this application, a light sensor can be used to collect multi-dimensional light intensity, as well as the incident angle and spectral information of the corresponding light. The actual light intensity parameters are obtained by model training. The obtained light intensity parameters are used to generate corresponding voltage gradient control commands, and the voltage across the electrochromic layer 22 is controlled by the actual connection of the driving circuit. The overall transmittance of the optical film system is adjusted by the movement of lithium ions in the strip channel 211.

[0032] Example 2: Figure 6 As shown, a method for adjusting the transmittance of an intelligent optical film system, specifically for the aforementioned intelligent optical film system with adjustable transmittance, includes the following steps: S1. By setting the control module, the light sensor in the sensor unit uses the light intensity of the current external environment, and the voltage in the corresponding driving circuit is matched with the corresponding light intensity. The driving circuit outputs the corresponding voltage value of the transparent electrode layer 21. S2. When a voltage is applied to the transparent electrode layer 21, the electrochromic layer 22 can undergo an oxidation-reduction reaction under the action of an electric field, and the corresponding lithium ions can migrate in the strip channel 211, thereby changing the light transmittance of the optical film system.

[0033] The above specific embodiments are merely several optional embodiments of the present invention. Based on the technical solutions of the present invention and the relevant teachings of the above embodiments, those skilled in the art can make various alternative improvements and combinations to the above specific embodiments.

Claims

1. A smart optical film system with adjustable light transmittance, characterized in that, The utility model relates to a kind of optical lens, including: Lens unit; And, polarization unit is arranged in the position of one side of the lens unit, the polarization unit is used to separate or synthesis the light beam passing through optical lens; The polarization unit includes polarizer, the surface of the polarizer is provided with optical film structure, the optical film structure includes sequentially compression molding substrate layer, functional layer and protective layer;Wherein, the substrate layer is high transparent polyester film layer;The protective layer is polymethylsiloxane coating; Further including the adjusting module connected with polarizer, the adjusting module can adjust the light transmittance of functional layer according to external control signal, the adjusting module controls the voltage size of two poles of access electrochromic material.

2. The smart optical film system with adjustable light transmission according to claim 1, wherein, The functional layer includes two transparent electrode layers, and electrochromic layer is located in the middle position of two transparent electrode layers, one of the transparent electrode layers is located in the lower side position of high transparent polyester film layer, and the other transparent electrode layer is located in the upper side position of polymethylsiloxane coating.

3. The smart optical film system with adjustable light transmission of claim 2, wherein, The surface of the high transparent polyester film is treated by plasma, and the thickness of the high transparent polyester film is less than 200 μm, the electrochromic material selects spiro compounds, and nano silicon nitride modified by n-octyl trimethoxysilane is used as conductive medium.

4. The smart optical film system with adjustable light transmission according to claim 3, wherein, The material of the transparent electrode layer is indium tin oxide, and a plurality of strip channels are provided on the side of the transparent electrode layer close to the electrochromic layer, and the strip channels are filled with liquid crystal polymers.

5. The smart optical film system with adjustable light transmission of claim 4, wherein, The electrochromic layer is attached between the middle portions of the two transparent electrode layers, and the material of the electrochromic layer is lithium ion doped polymer doped with tungsten trioxide, which changes the light transmittance by redox reaction under the action of electric field.

6. The smart optical film system with adjustable light transmission of claim 5, wherein, Under the action of electric field, lithium ions in the electrochromic layer can migrate in the strip channels, ensuring uniformity of color change.

7. The smart optical film system with adjustable light transmission of claim 6, wherein, The polymethylsiloxane coating includes polyolefin and PET resin, which is prepared by sol-gel method, and the polyolefin and PET resin are layered and laid by stacking and compression.

8. The smart optical film system with adjustable light transmission of claim 7, wherein, A silica transition layer is further provided between the electrochromic layer and the middle portions of the transparent electrode layers, and a plurality of through holes are uniformly provided on the silica transition layer, and the through holes and the strip channels are arranged in a staggered relationship.

9. The smart optical film system with adjustable light transmission of claim 8, wherein, The adjusting module includes a sensor unit, the sensor unit includes an illumination sensor and a temperature sensor, the illumination sensor is used to collect the ambient light intensity of the optical film system, and the temperature sensor is used to collect the ambient temperature of the optical film system.

10. A method of adjusting the light transmittance of a smart optical film system, applied to the smart optical film system with adjustable light transmittance as claimed in claim 9, characterized in that, The utility model relates to a kind of optical lens, including: S1, by the control module set, the light intensity in current external environment is used by the illumination sensor in sensor unit, the voltage size in corresponding drive circuit is matched by corresponding light intensity size, and corresponding voltage value transparent electrode layer is output by drive circuit; S2, when inputting voltage to transparent electrode layer, electrochromic layer can occur redox reaction under the action of electric field, corresponding lithium ion can migrate in strip channel, to change the light transmittance of optical film system.

Citation Information

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