Functional Inks Based on Layered Materials and Printed Layered Materials
US-2015337145-A1 · Nov 26, 2015 · US
US2018299708A1 · US · A1
| Field | Value |
|---|---|
| Publication number | US-2018299708-A1 |
| Application number | US-201715574020-A |
| Country | US |
| Kind code | A1 |
| Filing date | Mar 10, 2017 |
| Priority date | Aug 31, 2016 |
| Publication date | Oct 18, 2018 |
| Grant date | — |
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An optical assembly for an optical device. The optical assembly comprises a first substrate and a second substrate opposite the first substrate. A dimming structure is disposed between the first substrate and the second substrate. A light shielding structure is disposed on a surface of the second substrate opposite to the first substrate. The light shielding structure is configured to absorb at least one of ultraviolet light, near-ultraviolet light, infrared light, or far-infrared light in the sunlight and output an electrical control signal, and the dimming structure is configured to adjust light transmittance in response to the electrical control signal.
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1 . An optical assembly comprising: a first substrate and a second substrate opposite the first substrate; a dimming structure disposed between the first substrate and the second substrate; and a light shielding structure disposed on a surface of the second substrate opposite to the first substrate; wherein the light shielding structure is configured to absorb at least one of ultraviolet light, near-ultraviolet light, infrared light, or far-infrared light in the sunlight and output an electrical control signal, and the dimming structure is configured to adjust light transmittance in response to the electrical control signal. 2 . The optical assembly according to claim 1 , further comprising: a third substrate opposite the second substrate; the light shielding structure comprising: a light absorbing layer; a first transparent electrode; and a second transparent electrode, wherein the first transparent electrode is disposed on a surface of the second substrate toward the third substrate, the second transparent electrode is disposed on a surface of the third substrate toward the second substrate; the light absorption layer is disposed between the first transparent electrode and the second transparent electrode; wherein the light absorption layer is configured to absorb the at least one of ultraviolet light, near-ultraviolet light, infrared light, or far-infrared light in the sunlight and convert energy of the absorbed light into electrical energy, and the first transparent electrode and the second transparent electrode are configured to output the electric energy as the electrical control signal. 3 . The optical assembly according to claim 2 , wherein the first transparent electrode and the second transparent electrode each independently are a single-layer indium tin oxide, a single-layer of indium zinc oxide, or a indium tin oxide and indium zinc oxide composite film. 4 . The optical assembly according to claim 2 , wherein the light absorption layer absorbs at least ultraviolet light in the sunlight. 5 . The optical assembly according to claim 2 , further comprising a controller, electrically connected to the dimming structure and the light shielding structure; the controller is configured to receive the electrical control signal outputted from the light-shielding structure and output the electrical control signal to the dimming structure. 6 . The optical assembly according'to claim 1 , wherein the dimming structure comprises: a third transparent electrode on a surface of the first substrate toward the second substrate: a fourth transparent electrode on a surface of the second substrate toward the first substrate; and a polymer dispersed liquid crystal layer between the third transparent electrode and the fourth transparent electrode; wherein the third transparent electrode and the fourth transparent electrode are configured to receive the electrical control signal to control light transmittance of the polymer dispersed liquid crystal layer. 7 . The optical assembly according to claim 6 wherein the electrical control signal comprises a current signal or a voltage signal, wherein the light transmittance of the polymer dispersed liquid crystal layer increases as the corresponding current value of the current signal or the corresponding voltage value of the voltage signal increases. 8 . The optical assembly according to claim 6 , wherein the polymer dispersed liquid crystal layer is divided into a plurality of regions, and light transmittance of the polymer dispersed liquid crystal layer in each of the plurality of regions is different; or light transmittance of the polymer dispersed liquid crystal layer in some of the plurality of regions is different from that in other remaining regions. 9 . The optical assembly as in claim 8 , wherein a profile of each of the plurality of regions is set to be a shape of a logo. 10 . The optical assembly as in claim 1 , the dimming structure is configured for explosion protection. 11 . An optical device comprising the optical assembly according to claim 1 . 12 . The optical device according to claim 11 , wherein the optical device is a car window, a window for a building, or a glass lens. 13 . A method of manufacturing an optical assembly, comprising: forming a dimming structure between a first substrate and a second substrate opposite the first substrate; and forming a light shielding structure on the second substrate, wherein the light shielding structure is configured to absorb at least one of ultraviolet light, near-ultraviolet light, infrared light, or far-infrared light in the sunlight and output an electrical control signal, and the dimming structure is configured to adjust light transmittance in response to the electrical control signal. 14 . The method of manufacturing an optical assembly according to claim 13 , wherein forming the light shielding structure on the second substrate comprises: forming a first transparent electrode on a surface of the second substrate opposite to the first substrate; forming a light absorption layer on the first transparent electrode; forming a second transparent electrode on a third substrate; and combining the second substrate and the third substrate, the second transparent electrode facing the second substrate; wherein the light absorption layer is configured to absorb at least ultraviolet light in sunlight and convert energy of the absorbed light into electrical energy, and the first transparent electrode and the second transparent electrode are configured to output the electrical energy converted by the light absorbing layer as the electrical control signal. 15 . The method of manufacturing an optical assembly according to claim 13 , wherein forming the dimming structure comprises: forming a third transparent electrode on the first substrate and a fourth transparent electrode on the second substrate; combining the first substrate and the second substrate to form a cell, the third transparent electrode facing the second substrate, and the fourth transparent electrode facing the first substrate; filling polymer dispersed liquid crystals between the first substrate and the second substrate; and forming a polymer dispersed liquid crystal layer through a polymerization process, wherein the third transparent electrode and the fourth transparent electrode are configured to receive the electrical control signal to adjust light transmittance of the polymer dispersed liquid crystal layer. 16 . The method of manufacturing an optical assembly according to claim 15 , wherein forming the polymer dispersed liquid crystal layer by a polymerization process comprises: irradiating the polymer dispersed liquid crystals with ultraviolet light to form the polymer dispersed liquid crystal layer. 17 . The method of manufacturing, an optical assembly according to claim 16 , wherein the electrical control signal comprises a current signal or a voltage signal, and the light transmittance of the polymer dispersed liquid crystal layer increases as the corresponding current value of the current signal or the corresponding voltage value of the voltage signal increases. 18 . The method of manufacturing an optical assembly according to claim 15 , wherein forming the polymer dispersed liquid crystal layer by a polymerization process comprises: partially blocking the polymer-dispersed liquid crystals using a light-shielding member; after the blocking, irradiating the polymer dispersed liquid crystals with ultraviolet light to form a polymer disperse
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characterised by their electrical, optical, physical properties; materials therefor; method of making · CPC title
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