Electrochromic devices having n-doped conductive polymer as transparent conducting layer, ion storage layer, and / or electrochromic layer

JP2024070824A5Active Publication Date: 2026-03-19AMBILIGHT INC
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
AMBILIGHT INC
Filing Date
2023-11-01
Publication Date
2026-03-19

AI Technical Summary

Technical Problem

Conventional electrochromic devices (ECDs) face challenges due to the use of indium tin oxide (ITO), which is mechanically fragile, has a small bending radius, and is limited by rare earth metal availability, making it unsuitable for roll-to-roll manufacturing and flexible electronics, while also being costly.

Method used

The use of n-doped organic conductive polymers as transparent conductive layers, ion storage layers, or electrochromic layers in ECDs, which can be integrated into a single layer to simplify the device structure and reduce costs, offering high optical transparency, flexibility, and compatibility with solution-processable materials.

Benefits of technology

The n-doped organic conductive polymers provide high performance as transparent conductors, ion storage materials, and electrochromic layers, enabling cost-effective, flexible ECDs with improved durability and manufacturing efficiency.

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Abstract

To provide electrochromic devices containing an n-doped organic conductive polymer.SOLUTION: The present disclosure presents electrochromic devices incorporating an n-doped organic conductive polymer capable of functioning as a transparent conductor, and / or ion storage material, and / or an electrochromic material in the electrochromic devices.SELECTED DRAWING: Figure 1
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Description

[Technical field]

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims priority to U.S. Application No. 18 / 099,850, filed January 20, 2023, and International Application No. PCT / US2022 / 048711, filed November 2, 2022, the entire contents of which are incorporated herein by reference.

[0002] The present invention relates to an electrochromic device having an n-doped organic conductive polymer which can serve as a transparent conductive layer or / and an ion storage layer or / and an electrochromic layer. [Background technology]

[0003] An electrochromic device (ECD) typically consists of seven layers, including two non-conductive layers as substrates, one or two transparent conductive (TC) layers, an electrochromic layer as working electrode (WE), an ion storage layer as counter electrode (CE) and an electrolyte layer. The electrochromic layer changes color when an external electrical bias is applied. Meanwhile, in the ion storage layer, the opposite reaction to that in the electrochromic layer occurs, balancing the charge generated in the electrochromic layer. Between the electrochromic layer and the ion storage layer is an electrolyte layer, which acts as an ion source and an ion conducting channel. The electrochromic layer and the ion storage layer are disposed on a transparent conductor, which is a current collector for the device. If two transparent conductive layers are selected, the device functions as a transmissive device. If one transparent conductor is used (e.g., the other conductive layer is a reflective conductive layer), it typically functions as a reflective device. The most used TC layer in ECDs is indium tin oxide (ITO) due to its low sheet resistance, high light transparency and large enough potential window for most EC materials. However, ITO has a small bending radius and bending strain, and is mechanically fragile, limiting its applications in roll-to-roll manufacturing and flexible electronics. In addition, indium is a rare earth metal with scarce mineral reserves. With the increasing demand for ITO, the availability of indium will be highly constrained within 20 years, but has seen a price increase in recent years. Therefore, it is highly desirable to find an ITO substitute that offers high performance while at the same time being low cost, and it would be even more valuable to reduce the number of layers in the ECD to simplify the device structure and further reduce the cost. Furthermore, it is also desirable to combine a solution processable, transparent ion storage material with minimal color change with the electrochromic material to improve performance and durability. Summary of the Invention [Means for solving the problem]

[0004] The present disclosure relates to electrochromic devices comprising n-doped organic conductive polymers.

[0005] In one aspect, the electrochromic device of the present disclosure includes a first insulating substrate, a first conductive layer disposed on the first insulating substrate, an ion storage layer disposed on the first conductive layer, an electrolyte layer disposed on the ion storage layer, an electrochromic layer disposed on the electrolyte layer, a second conductive layer disposed on the electrochromic layer, and a second insulating substrate disposed on the second conductive layer, wherein the first conductive layer or the second conductive layer or the ion storage layer, or any combination thereof, is represented by the formula [ka] In this formula, X is O, S or Se, each of m and n is an integer greater than zero, and each of R1 and R2 is independently hydrogen or C1-C 10 alkyl, M + is a cation. In some embodiments, X is O, R and R are each hydrogen, and M + are protons. In some embodiments, the first conductive layer, or the second conductive layer, or the ion storage layer, or any combination of the first conductive layer, the second conductive layer, and the ion storage layer, are comprised of the n-doped organic conductive polymer of the present disclosure. In some embodiments, both the first conductive layer and the ion storage layer comprise the n-doped organic conductive polymer of the present disclosure and are integrated into one single layer.

[0006] Both inorganic and organic electrochromic materials may be used in the electrochromic layer in the electrochromic device disclosed herein. In some embodiments, the electrochromic layer in the electrochromic device disclosed herein comprises one or more of electrochromic conjugated polymers including WO3, NiO, IrO2, V2O5, isoindigo, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, and copolymers thereof, or copolymers containing acceptor units including benzothiadiazole, benzotriazole, or diketopyrrolopyrrole. Various types of electrolyte materials (e.g., liquid electrolyte, gel electrolyte, or solid electrolyte) may be used in the electrolyte layer in the electrochromic device disclosed herein. In some embodiments, the electrolyte layer in the electrochromic device disclosed herein comprises a solid electrolyte or a gel electrolyte. Both inorganic and organic ion storage materials may be used in the ion storage layer in the electrochromic device disclosed herein. In some embodiments, when the ion storage layer does not comprise the n-doped organic conductive polymer of the present disclosure, the ion storage layer in the electrochromic device disclosed herein comprises one or more oxides of metal elements in Groups 4-12, or a mixture of oxides, or one of the oxides doped with any other metal oxide. In some embodiments, at least one of the first conductive layer and the second conductive layer is transparent. In some embodiments, both the first conductive layer and the second conductive layer are transparent. In some embodiments, the first conductive layer or the second conductive layer comprises a reflective conductive layer.

[0007] In another aspect, the electrochromic device of the present disclosure includes a first insulating substrate, a first conductive layer disposed on the first insulating substrate, and a conductive layer disposed on the first conductive layer, the conductive layer having a formula [ka] the first electrochromic layer comprising an n-doped organic conductive polymer of formula (I), an electrolyte layer disposed on the first electrochromic layer, a second electrochromic layer disposed on the electrolyte layer and comprising a p-doped electrochromic material, a second conductive layer disposed on the second electrochromic layer, and a second insulating substrate disposed on the second conductive layer, wherein X is O, S, or Se, each of m and n is an integer greater than zero, and each of R1 and R2 is independently hydrogen or C1-C 10 alkyl, M + is a cation. In some embodiments, X is O, R and R are each hydrogen, and M + are protons. In some embodiments, the first electrochromic layer disposed on the first conductive layer is comprised of an n-doped organic conductive polymer of the present disclosure.

[0008] Both inorganic and organic p-doped electrochromic materials may be used for the second electrochromic layer in the electrochromic device disclosed herein. In some embodiments, the p-doped electrochromic material in the electrochromic device disclosed herein comprises one or more of NiO, IrO2, V2O5, isoindigo, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, and copolymers thereof, or copolymers containing acceptor units including benzothiadiazole, benzotriazole, or diketopyrrolopyrrole. In some embodiments, the p-doped electrochromic material is a p-doped electrochromic polymer. Various types of electrolyte materials (e.g., liquid electrolytes, gel electrolytes, or solid electrolytes) may be used in the electrochromic layer in the electrochromic devices disclosed herein. In some embodiments, the electrolyte layer in the electrochromic devices disclosed herein comprises a solid electrolyte or a gel electrolyte.

[0009] In some embodiments, one of the first conductive layer or the second conductive layer comprises an inorganic conductive material. In some embodiments, the inorganic conductive material comprises indium tin oxide or a metal. In some embodiments, at least one of the first conductive layer or the second conductive layer is transparent. In some embodiments, both the first conductive layer and the second conductive layer are transparent. In some embodiments, the first conductive layer or the second conductive layer is reflective and comprises a reflective conductive material.

[0010] Certain features of various embodiments of the present technology are set forth with particularity in the appended claims. A better understanding of the nature and advantages of the present technology will be obtained by reference to the following detailed description that sets forth illustrative embodiments, which utilize the principles of the present disclosure. The accompanying drawings include: [Brief description of the drawings]

[0011] [Figure 1] FIG. 1 is a cross-sectional view of an electrochromic device including a layer of an n-doped organic conductive polymer of the present disclosure that functions as a transparent conductive layer according to one exemplary embodiment of the present disclosure. [Figure 2(A)] FIG. 1 contains the electrical conductivity of an exemplary n-doped organic conductive polymer, n-PBDF thin film at different thicknesses according to some exemplary embodiments. [Figure 2(B)] FIG. 1 contains a diagram containing the transmittance of an exemplary n-doped organic conductive polymer, n-PBDF thin film at different thicknesses according to some exemplary embodiments. [Figure 2(C)] FIG. 13 contains the sheet resistance and transmittance at 550 nm of an exemplary n-doped organic conductive polymer, n-PBDF, thin film at different thicknesses according to some exemplary embodiments. [Figure 3(A)] 1 shows an exemplary design of a three-electrode electrochromic device including a layer of an exemplary n-doped organic conductive polymer, n-PBDF, which serves as the TC layer of the electrochromic device. FIG 2 shows a schematic diagram of a three-electrode electrochromic device according to one exemplary embodiment. [Figure 3(B)] 3(A) shows an exemplary design of a three-electrode electrochromic device including a layer of an exemplary n-doped organic conductive polymer, n-PBDF, which serves as the TC layer of the electrochromic device. [Figure 4(A)]FIG. 1 contains cyclic voltammograms of electrochromic polymer (ECP)-B on ITO / substrate and on an exemplary n-doped organic conductive polymer, n-PBDF / substrate, as well as cyclic voltammograms of n-PBDF on platinum button electrodes. [Figure 4(B)] FIG. 13. Spectroelectrochemical analysis of ECP-B on n-PBDF / substrate. [Figure 5(A)] Figure 1 shows the charge capacity of an exemplary n-doped organic conductive polymer, n-PBDF.Cyclic voltammograms of 30 nm thick n-BDF thin film on ITO at different rates in 0.2 M tetrabutylammonium-bis-trifluoromethanesulfonimidate (TBA-TFSI) in propylene carbonate (PC). [Figure 5(B)] 1 shows the charge capacity of an exemplary n-doped organic conductive polymer, n-PBDF, and the average current density at 0.3 V (vs. Ag / AgCl) plotted against scan rate. [Figure 6] 1A-1C are cross-sectional views of electrochromic devices including a layer of an n-doped organic conductive polymer of the present disclosure that functions as an ion storage layer according to some exemplary embodiments of the present disclosure. [Figure 7(A)] 1 is a diagram of an exemplary ITO / exemplary n-doped organic conductive polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF acting as an ion storage layer according to one exemplary embodiment, and a spectroelectrochemical analysis in the colored and bleached states according to one exemplary embodiment. [Figure 7(B)] 1 is a diagram of an exemplary ITO / exemplary n-doped organic conducting polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF acting as an ion storage layer according to one exemplary embodiment, and FIG. 2 is a diagram of switching kinetics derived from stepped potential fast chronoamperometry (SPFC) according to one exemplary embodiment. [Figure 8]FIG. 2 is a cross-sectional view of an electrochromic device according to some exemplary embodiments of the present disclosure, comprising a layer of an n-doped organic conductive polymer of the present disclosure simultaneously functioning as both an ion storage layer and a TC layer for a counter electrode, and another layer of an n-doped organic conductive polymer of the present disclosure functioning as a TC layer for a working electrode. [Figure 9(A)] 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment; and FIG. 2 is a diagram of a spectroelectrochemical analysis in the colored and bleached states, according to one exemplary embodiment. [Figure 9(B)] FIG. 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment. FIG. 2 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, according to one exemplary embodiment. FIG. 3 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-B electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a working electrode, according to one exemplary embodiment. [Figure 10(A)] 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-M electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment; and FIG. 2 is a diagram of a spectroelectrochemical analysis in the colored and bleached states, according to one exemplary embodiment. [Figure 10(B)] FIG. 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-M electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment. FIG. 2 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-M electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, according to one exemplary embodiment. FIG. 3 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-M electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a working electrode, according to one exemplary embodiment. [Figure 11(A)]1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-BK electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment; and FIG. 2 is a diagram of spectroelectrochemical analysis in the colored and bleached states, according to one exemplary embodiment. [Figure 11(B)] FIG. 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-BK electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, and another layer of n-PBDF that serves as a TC layer for a working electrode, according to one exemplary embodiment. FIG. 2 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-BK electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a counter electrode, according to one exemplary embodiment. FIG. 3 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / ECP-BK electrochromic device including a layer of n-PBDF that simultaneously serves as both an ion storage layer and a TC layer for a working electrode, according to one exemplary embodiment. [Figure 12] FIG. 1 shows the absorbance spectroelectrochemical analysis of an exemplary n-doped organic conducting polymer, n-PBDF, in 0.2 M TBA-TFSI in PC with increasing applied voltage from −0.3 V to 0.9 V. [Figure 13] FIG. 2 is a cross-sectional view of an electrochromic device including a layer of an n-doped organic conductive polymer of the present disclosure that serves as an electrochromic layer for a counter electrode according to one illustrative embodiment. [Figure 14(A)] 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / PEDOT:PSS electrochromic device including a layer of n-PBDF serving as an electrochromic layer for a counter electrode according to one exemplary embodiment, and a spectroelectrochemical analysis in the colored and bleached states according to one exemplary embodiment. [Figure 14(B)] 1 is a diagram of an exemplary n-doped organic conductive polymer n-PBDF / PEDOT:PSS electrochromic device including a layer of n-PBDF serving as an electrochromic layer for the counter electrode according to one exemplary embodiment. FIG. 2 is a diagram of the switching kinetics from a SPFC according to one exemplary embodiment. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS

[0012] In the following description, certain specific details are set forth to provide a thorough understanding of various embodiments of the present disclosure. However, those skilled in the art will understand that the present disclosure may be practiced without these details. Furthermore, although various embodiments of the present disclosure are disclosed herein, many adjustments and modifications may be made within the scope of the present disclosure, according to the general knowledge commonly held by those skilled in the art. Such modifications include the substitution of known equivalents for any aspect of the present disclosure to achieve the same result in substantially the same way.

[0013] Unless otherwise required by context, throughout this specification and claims, the word "comprise" and variations thereof, such as "comprises" and "comprising," are intended to be construed in an open-ended inclusive sense, i.e., "including, but not limited to." Throughout this specification, the recitation of numerical ranges of values ​​is intended to serve as a shorthand notation to refer individually to each separate value falling within the range, inclusive of the values ​​defining the range, and each separate value is incorporated herein as if it were individually recited therein. Additionally, the singular forms "a," "an," and "the" include plural references unless the context clearly dictates otherwise.

[0014] Throughout this specification, a reference to "one embodiment" or "an embodiment" means that a particular feature, structure, or characteristic described in connection with that embodiment is included in at least one embodiment of the present disclosure. Thus, the appearances of the phrases "in one embodiment" or "in an embodiment" in various places throughout this specification are not necessarily all referring to the same embodiment, although in some instances they may. Furthermore, the particular features, structures, or characteristics may be combined in any suitable manner in one or more embodiments.

[0015] Various embodiments described herein are of the formula [ka] In one embodiment, the present invention relates to an electrochromic device comprising an n-doped organic conductive polymer of the formula: wherein X is O, S, or Se, each of m and n is an integer greater than zero, and each of R1 and R2 is independently hydrogen or C1-C 10 alkyl, M + is a cation. In some embodiments, X is O, R and R are each hydrogen, and M + are protons, and the n-doped organic conductive polymers according to these embodiments are referred to as n-PBDFs. A layer comprising the n-doped organic conductive polymers of the present disclosure may function as a transparent conductive (TC) layer, and / or an ion storage layer, and / or an electrochromic layer. Three specific electrochromic polymers are used throughout this specification for illustrative purposes. It should be understood that this disclosure is not limited to these examples. ECP-Magenta (ECP-M) is an exemplary magenta ECP. ECP-Blue (ECP-B) is an exemplary blue ECP. ECP-Black (ECP-BK) is an exemplary black ECP. Exemplary structures of ECP-M, ECP-B, and ECP-BK are shown below, respectively, where n is an integer greater than zero:

[0016] [ka]

[0017] A conventional ECD consists of seven layers including two non-conductive layers as substrates, one or two transparent conductive (TC) layers (one for working electrode and one for counter electrode) disposed on the substrates, an electrochromic layer as working electrode (WE), an ion storage layer as counter electrode (CE), and an electrolyte layer inserted between WE and CE. In the present disclosure, the layer including the n-doped organic conductive polymer of the present disclosure can serve as a TC layer, or / and an ion storage layer, or / and an electrochromic layer. In some embodiments, the n-doped organic conductive polymer of the present disclosure can replace the conventional ITO to be a highly transparent conductor, and the layer including the n-doped organic conductive polymer of the present disclosure can function as at least one layer of the TC layer in the ECD. In some embodiments, the layer including the n-doped organic conductive polymer of the present disclosure can function as an ion storage layer in the ECD. In some embodiments, the layer including the n-doped organic conductive polymer of the present disclosure can function as both a TC layer for the counter electrode and an ion storage layer separately. In some embodiments, the layer comprising the n-doped organic conductive polymer of the present disclosure can function simultaneously (e.g., integrated into one single layer) as both the TC layer and the ion storage layer for the counter electrode, resulting in reduced layers and simplified structure of the electrochromic device. In some embodiments, the layer comprising the n-doped organic conductive polymer of the present disclosure can function separately as the ion storage layer for the counter electrode and the TC layer for the working electrode. In some embodiments, the layer comprising the n-doped organic conductive polymer of the present disclosure can function simultaneously (e.g., integrated into one single layer) as both the TC layer and the ion storage layer for the counter electrode and the TC layer for the working electrode, resulting in reduced layers and simplified structure of the electrochromic device. In some embodiments, the layer comprising the n-doped organic conductive polymer of the present disclosure can function separately as both the TC layer and the ion storage layer for the counter electrode and the TC layer for the working electrode.In some embodiments, the layer comprising the n-doped organic conductive polymer of the present disclosure can undergo an oxidation-reduction reaction to exhibit electrochromic properties and function as an electrochromic layer (replacing a conventional ion storage layer as a counter electrode) and can be combined with an electrochromic layer comprising a p-doped electrochromic material as a working electrode. In some embodiments, the ECD of the present disclosure comprises a layer of the n-doped organic conductive polymer of the present disclosure. The layer comprising the n-doped organic conductive polymer of the present disclosure that functions as a TC layer and / or an ion storage layer can contain, in addition to the n-doped organic conductive polymer of the present disclosure, an electrolyte salt (e.g., Li. + Salt, Sodium + Salt, TBA + (tetrabutylammonium)) or some stabilizers for adjusting mechanical properties (e.g., PEG (polyethylene glycol), polystyrene) may contain other components that do not significantly affect the optical properties and electrical conductivity of the layer. The layer containing the n-doped organic conductive polymer of the present disclosure that functions as an electrochromic layer may contain, in addition to the n-doped organic conductive polymer of the present disclosure, an electrolyte salt (e.g., Li + Salt, Sodium + Salt, TBA + (tetrabutylammonium)), or some stabilizers to adjust the mechanical properties (e.g. PEG (polyethylene glycol), polystyrene), or some other n-doped electrochromic materials, such as WO3, viologens, or n-doped electrochromic polymers. By p-doped electrochromic material, we mean that the electrochromic process occurs when the material is oxidized. By n-doped electrochromic material, we mean that the electrochromic process occurs when the material is reduced.

[0018] In the present disclosure, the n-doped organic conductive polymer of the present disclosure exhibits low sheet resistance, high optical transparency, and large potential window for most EC materials, which makes the n-doped organic conductive polymer of the present disclosure an organic transparent conductor for ECD. In addition, the n-doped organic conductive polymer of the present disclosure is mechanically flexible and can be easily applied to roll-to-roll manufacturing and flexible ECD, competing with the traditional transparent conductor ITO. In the ECD disclosed in the present disclosure, when the layer containing the n-doped organic conductive polymer of the present disclosure simultaneously functions as both the ion storage layer for the counter electrode and the TC layer, the structure of the ECD can be simplified, and therefore can be manufactured at lower cost and improved throughput. Therefore, the technology of the present disclosure can provide high-performance ECD at lower cost.

[0019] In one embodiment, the electrochromic device of the present disclosure includes a layer comprising an n-doped organic conductive polymer of the present disclosure, which does not undergo redox reactions and remains transparent within the potential window of the applied device. There are three main different types of configurations of the electrochromic device of the present disclosure. Exemplary configurations of each type are shown and discussed below.

[0020] A first type of electrochromic device of the present disclosure has at least one TC layer comprising an n-doped organic conductive polymer of the present disclosure. As shown in FIG. 1, such an exemplary configuration may have a first insulating substrate 102, a first conductive layer 104 disposed on the first insulating substrate 102 and comprising an n-doped organic conductive polymer of the present disclosure, an ion storage layer 106 disposed on the first conductive layer 104, an electrolyte layer 108 disposed on the ion storage layer 106, an electrochromic layer 110 disposed on the electrolyte layer 108, a second conductive layer 112 disposed on the electrochromic layer 110, a second insulating substrate 114 disposed on the second conductive layer 112, and circuit wiring 116 for operating the electrochromic device 100. In some embodiments, at least one of the first conductive layer or the second conductive layer is transparent (when the conductive layer is transparent, it is called a TC layer). In some embodiments, both the first conductive layer and the second conductive layer are transparent (for these ECDs of the present disclosure, having two TC layers). In some embodiments, the first conductive layer or the second conductive layer comprises a reflective conductive layer, such as a metal layer, forming a reflective ECD. In some embodiments, the first conductive layer 104 may comprise a transparent conductor (e.g., ITO) that does not comprise the n-doped organic conductive polymer of the present disclosure, and the second conductive layer 112 comprises the n-doped organic conductive polymer of the present disclosure. In some embodiments, both the first conductive layer 104 and the second conductive layer 112 comprise the n-doped organic conductive polymer of the present disclosure. In some embodiments, at least one of the first conductive layer 104 and the second conductive layer 112 is comprised of the n-doped organic conductive polymer of the present disclosure.

[0021] The n-doped organic conductive polymers of the present disclosure can function as high-performance transparent conductors. To demonstrate this, n-PBDF is used as an exemplary n-doped organic conductive polymer to investigate the optical transmittance, electrical conductivity, and sheet resistance at various thicknesses. FIG. 2(A) illustrates the conductivity of thin films with thicknesses ranging from 16 nm to 94 nm. The conductivity of the thin films increases with increasing film thickness. It reaches 6100 S / cm around a thickness of 94 nm. The optical transmittance of n-PBDF thin films is illustrated in FIG. 2(B). As shown in FIG. 2(B), n-PBDF thin films exhibit high transmittance in the visible range (e.g., 400-700 nm). The high conductivity of the thin films and the high transmittance in the visible range indicate that the n-doped organic conductive polymers of the present disclosure are suitable for use as transparent conductors. This is further evident in FIG. 2(C), where sheet resistance and optical transmittance are plotted with film thickness. At the wavelength of 550 nm, where the human eye is most sensitive, the optimized n-PBDF thin film has a low sheet resistance of 45 Ω / sq and a high transmittance (T 550 >80%), which can compete with the conventional transparent conductor ITO. Thus, the n-doped organic conductive polymers of the present disclosure are established as high-performance transparent conductors.

[0022] To simplify the demonstration of the n-doped organic conductive polymer of the present disclosure acting as a TC layer in an ECD, a three-electrode electrochromic device 300 is employed. As shown in the schematic diagram in FIG. 3(A), the ECD 300 disclosed herein includes a counter electrode (e.g., Pt) CE, a reference electrode (e.g., Ag / AgCl) RE, and a working electrode WE. As shown in the cross-sectional view of the working electrode WE in FIG. 3(B), the working electrode WE includes a piece of glass or PET as a substrate, a layer of the n-doped organic conductive polymer of the present disclosure as a transparent conductor, and a layer of electrochromic material (e.g., ECP-B) as an electrochromic layer. In one embodiment, the T 550 (Transmittance at wavelength 550 nm) > 85% and R sA layer of an exemplary n-doped organic conductive polymer, n-PBDF, with (sheet resistance) <80 Ω / sq, is first coated on a bare glass substrate, followed by an electrochromic layer, e.g., ECP-B. The glass slide is then immersed in a liquid electrolyte to prepare a three-electrode electrochromic device. In one embodiment, upon application of a positive potential of up to 0.7 V (vs. Ag / AgCl), ECP-B gradually oxidizes and becomes transparent. This process is captured in a spectroelectrochemical measurement of ECP-B in the n-PBDF / substrate structure, as shown in FIG. 4(B). As the applied voltage increases, the transmittance of ECP-B in the visible range (e.g., 400-700 nm) increases. When the same measurement is performed using ITO as the transparent electrode, a very similar electrochromic response is recorded. CV measurements of ECP-B on ITO / substrate, ECP-B on n-PBDF / substrate, and n-PBDF itself taken on a platinum button working electrode are shown in FIG. 4(A), which shows that the ECP-B electrochromic layer has the same oxidation onset point around −0.2 V (vs. Ag / AgCl) on both ITO and n-PBDF transparent conductors, which is about 0.8 V lower than the oxidation onset point of n-PBDF (0.58 V vs. Ag / AgCl). Thus, when the voltage applied to n-PBDF is lower than 0.58 V, n-PBDF does not undergo redox reaction. Overall, these results demonstrate that the n-doped organic conductive polymers of the present disclosure can be used as TC layers in electrochromic devices without adversely affecting the optical and electrical properties of the electrochromic devices, and can be comparable to inorganic TCs (e.g., ITO).

[0023] In addition to transparency, the n-doped organic conductive polymers of the present disclosure exhibit high charge density. An exemplary n-doped organic conductive polymer, n-PBDF, is used for demonstration. The volumetric capacitance (C) of n-PBDF thin film was measured by recording cyclic voltammograms at different scan rates in 0.2 M TBA-TFSI (PC) electrolyte, as shown in FIG. 5(A). *) was measured. According to the cyclic voltammogram, the non-zero current plateau in the range of -0.2 V to +0.4 V represents the double layer capacitance. The capacitive behavior is also confirmed by the linear increase in current density with the scan rate, as shown in Figure 5(B). Both the high optical transparency and large charge capacity ensure that the n-doped organic conductive polymer of the present disclosure can be used as an ion storage material in ECD.

[0024] A second type of electrochromic device of the present disclosure has a layer comprising an n-doped organic conductive polymer of the present disclosure as an ion storage layer. An exemplary ECD scheme having a layer comprising an n-doped organic conductive polymer of the present disclosure functioning as an ion storage layer is shown in FIG. 6. The ECD includes a first insulating substrate 602, a first conductive layer 604 disposed on the first insulating substrate 602, an ion storage layer 606 comprising an n-doped organic conductive polymer of the present disclosure disposed on the first conductive layer 604, an electrolyte layer 608 disposed on the ion storage layer 606 comprising an n-doped organic conductive polymer of the present disclosure, an electrochromic layer 610 disposed on the electrolyte layer 608, a second conductive layer 612 disposed on the electrochromic layer 610, a second insulating substrate 614 disposed on the second conductive layer 612, and circuit wiring 616 for operating the electrochromic device 600. The n-doped organic conductive polymer layer of the present disclosure functions as an ion storage layer and can work with either inorganic or organic electrochromic materials in the electrochromic layer 610 (working electrode). In some embodiments, the ion storage layer 606 is comprised of an n-doped organic conductive polymer of the present disclosure. In some embodiments, at least one of the first conductive layer or the second conductive layer is transparent. In some embodiments, both the first conductive layer and the second conductive layer are transparent. In some embodiments, the first conductive layer or the second conductive layer includes a reflective conductive layer, such as a metal layer, to form a reflective ECD.

[0025] To demonstrate the performance of a layer including the n-doped organic conductive polymer of the present disclosure as an ion storage layer (counter electrode) for an electrochromic device, the following ECD embodiment uses ECP-B as an exemplary ECP in the electrochromic layer and n-PBDF as an exemplary n-doped organic conductive polymer as the working electrode. 0.2M in 1:1 PEGDA:PC crosslinked in situ is used as the electrolyte layer 608. A thin film of n-PBDF of the present disclosure is used as the ion storage layer 606 for the counter electrode. FIG. 7(A) illustrates the transmittance spectrum of an electrochromic device of the present disclosure. The transmittance spectrum shows a large change during the coloring process, indicating that the electrochromic device successfully switches between the colored and bleached states. The switching kinetics from stepped potential fast chronoamperometry (SPFC) is shown in FIG. 7(B), which shows that the electrochromic device achieves fast switching from 5% to 55% at 612 nm. The results demonstrate that the n-doped organic conductive polymers of the present disclosure perform well as ion storage materials for electrochromic devices.

[0026] A third type of electrochromic device of the present disclosure has a layer comprising an n-doped organic conductive polymer of the present disclosure that functions as both a TC layer and an ion storage layer. One exemplary configuration of an electrochromic device 800 is shown in FIG. 8. The ECD 800 includes a first insulating substrate 802, a layer 804 comprising an n-doped organic conductive polymer of the present disclosure disposed on the first insulating substrate 802, an electrolyte layer 806 disposed on the layer 804 comprising an n-doped organic conductive polymer of the present disclosure, an electrochromic layer 808 disposed on the electrolyte layer 806, a TC layer 810 disposed on the electrochromic layer 808, and a second insulating substrate 812 disposed on the conductive layer 810. The conductive layer 810 may comprise or consist of an n-doped organic conductive polymer of the present disclosure, or may be a TC layer that does not include an n-doped organic conductive polymer of the present disclosure, such as ITO, or may be a reflective conductive layer, such as a metal. The electrochromic device 800 further includes circuit wiring 814 for operating the electrochromic device 800. In this exemplary device 800, a single layer 804 including the n-doped organic conductive polymer of the present disclosure functions simultaneously as both a TC layer for the counter electrode and an ion storage layer, thus simplifying the structure of the device with lower cost and higher throughput. In some embodiments, due to the deformation from other components in each layer, the layer 804 including the n-doped organic conductive polymer of the present disclosure may be divided into two separate layers, one layer including the n-doped organic conductive polymer of the present disclosure functions as a TC layer and the other layer including the n-doped organic conductive polymer of the present disclosure functions as an ion storage layer. The TC layer 810 may also include or consist of the n-doped organic conductive polymer of the present disclosure, or may be a TC layer that does not include the n-doped organic conductive polymer of the present disclosure, such as ITO.In some embodiments, the layer 804 comprising the n-doped organic conductive polymer of the present disclosure may be split into two separate layers, with one layer comprising the n-doped organic conductive polymer of the present disclosure as an ion storage layer and one TC layer, e.g., ITO, that does not comprise the n-doped organic conductive polymer of the present disclosure, and the TC layer 810 may also comprise or consist of the n-doped organic conductive polymer of the present disclosure. In some embodiments, the electrochromic device of the present disclosure has a layer consisting of the n-doped organic conductive polymer of the present disclosure that functions as both a TC layer and an ion storage layer.

[0027] In one embodiment, n-PBDF, an exemplary n-doped organic conductive polymer, is assembled into an electrochromic device using ECP-B as the electrochromic layer 808 (working electrode), 0.2 M TBATFSI in 1:1 PEGDA:PC crosslinked in situ as the electrolyte layer 806, n-PBDF thin film as the transparent conductive layer 810 for the working electrode 808, and n-PBDF layer 804. The n-PBDF layer 804 simultaneously acts as both a transparent conductor and an ion storage layer for the counter electrode. The optical performance of the electrochromic device is shown in Figures 9(A) and 9(B). Figure 9(A) illustrates the transmittance spectrum of the electrochromic device. The transmittance spectrum shows a large change during the coloring process, indicating that the electrochromic device has been successfully switched between the colored and bleached states. The switching kinetics from the SPFC is shown in Figure 9(B), which shows that the electrochromic device achieves fast switching from 18% to 70% at 612 nm. The results demonstrate that the n-doped organic conductive polymers of the present disclosure perform well as transparent conductors and ion storage materials for the counter electrode.

[0028] The above structural configurations can be applied to other types of ECPs. For example, ECP-B in the electrochromic layer 808 can be replaced with ECP-M or ECP-BK. The optical performance of the electrochromic device with ECP-M electrochromic layer 808 is shown in Figures 10(A) and 10(B). Figure 10(A) illustrates the transmittance spectrum of the electrochromic device. The transmittance spectrum shows a large change during the coloring process, indicating that the electrochromic device successfully switches between the colored and bleached states. The switching kinetics from SPFC is shown in Figure 10(B), which shows that the electrochromic device achieves fast switching from 22% to 78% at 550 nm. The results demonstrate that the n-doped organic conductive polymer of the present disclosure works well as a transparent conductor and ion storage material with the ECP-M electrochromic layer 808.

[0029] The optical performance of the electrochromic device with ECP-BK electrochromic layer 808 is shown in Figure 11(A) and Figure 11(B). Figure 11(A) illustrates the transmittance spectrum of the electrochromic device. The transmittance spectrum shows a large change during the coloring process, indicating that the electrochromic device successfully switches between the colored and bleached states. The switching kinetics from SPFC is shown in Figure 11(B), which shows that the electrochromic device achieves fast switching from 7% to 40% at 550 nm. The results demonstrate that the n-doped organic conductive polymer of the present disclosure also works well with ECP-BK electrochromic layer 808 as a transparent conductor and / or ion storage material.

[0030] Both inorganic and organic electrochromic materials may be used in the electrochromic layer in the electrochromic device disclosed herein. In some embodiments, the electrochromic layer in the electrochromic device disclosed herein comprises one or more of electrochromic conjugated polymers including WO3, NiO, IrO2, V2O5, isoindigo, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, and copolymers thereof, or copolymers containing acceptor units including benzothiadiazole, benzotriazole, or diketopyrrolopyrrole. Various types of electrolyte materials (e.g., liquid electrolyte, gel electrolyte, or solid electrolyte) may be used in the electrolyte layer in the electrochromic device disclosed herein. In some embodiments, the electrolyte layer in the electrochromic devices disclosed herein comprises a solid electrolyte or a gel electrolyte.

[0031] Both inorganic and organic ion storage materials may be used in the ion storage layer in the electrochromic devices disclosed herein. In some embodiments, when the ion storage layer does not include the n-doped organic conductive polymer of the present disclosure, the ion storage layer in the electrochromic devices disclosed herein comprises one or more oxides of metal elements in Groups 4-12, or a mixture of oxides, or one of the oxides doped with any other metal oxide. The substrates 102 and 114 may be any insulating substrate, such as glass or plastic. The substrates 102 and 114 may be flexible to accommodate roll-to-roll manufacturing processes.

[0032] In another aspect, the present disclosure also relates to the use of the n-doped organic conductive polymer of the present disclosure as an electrochromic layer. The exemplary organic conductive polymer PBDF and the exemplary n-doped organic conductive polymer n-PBDF are a redox couple. Therefore, they can function as electrochromic materials by potential. The spectroelectrochemical characterization of the exemplary n-doped organic conductive polymer n-PBDF is carried out in 0.2M TBA-TFSI in PC. As shown in FIG. 12, n-PBDF can undergo redox reaction and exhibits color with a maximum absorbance around 850 nm, and the absorbance increases with increasing applied voltage. FIG. 13 illustrates the configuration of an electrochromic device 1300 using the n-doped organic conductive polymer of the present disclosure as the electrochromic material for the counter electrode according to one exemplary embodiment. The electrochromic device 1300 includes a first insulating substrate 1302, a first conductive layer 1304 disposed on the first insulating substrate 1302, a first electrochromic layer 1306 disposed on the first conductive layer 1304 and comprising an n-doped organic conductive polymer of the present disclosure, an electrolyte layer 1308 disposed on the first electrochromic layer 1306 comprising an n-doped organic conductive polymer of the present disclosure, a second electrochromic layer 1310 disposed on the electrolyte layer 1308 and comprising a p-doped electrochromic material, a second conductive layer 1312 disposed on the second electrochromic layer 1310 comprising a p-doped electrochromic material, and a second insulating substrate 1314 disposed on the second conductive layer 1312. In some embodiments, one of the first or second conductive layers 1304 and 1312 may comprise an organic or inorganic conductive material (e.g., ITO). In some embodiments, one of the first conductive layer and the second conductive layer comprises a reflective conductive material, such as a metal, forming a reflective ECD. In some embodiments, at least one of the first conductive layer or the second conductive layer is transparent. In some embodiments, both the first conductive layer and the second conductive layer are transparent.In some embodiments, the first conductive layer 1304 and the second conductive layer 1312 do not include an n-doped organic conductive polymer of the present disclosure, as the n-doped organic conductive polymer of the present disclosure may color under the applied potential window for a dual polymer ECD as shown. The n-doped organic conductive polymer of the present disclosure in the first electrochromic layer 1306 functions as an n-doped ECP. The electrochromic device 1300 further includes circuitry 1316 for operating the electrochromic device 1300. In some embodiments, the first electrochromic layer 1306 is comprised of an n-doped organic conductive polymer of the present disclosure.

[0033] Both inorganic and organic p-doped electrochromic materials may be used in the second electrochromic layer 1310. In some embodiments, the p-doped electrochromic material in the second electrochromic layer 1310 includes one or more of electrochromic conjugated polymers including NiO, IrO2, V2O5, isoindigo, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, and copolymers thereof, or copolymers containing acceptor units including benzothiadiazole, benzotriazole, or diketopyrrolopyrrole. In some embodiments, the p-doped electrochromic material is a p-doped electrochromic polymer. Various types of electrolyte materials (e.g., liquid electrolytes, gel electrolytes, or solid electrolytes) may be used for the electrolyte layer 1308 in the electrochromic devices disclosed herein. In some embodiments, the electrolyte layer 1308 in the electrochromic devices disclosed herein comprises a solid electrolyte or a gel electrolyte.

[0034] To demonstrate the performance of the n-doped organic conductive polymer of the present disclosure as an EC layer, an exemplary n-doped organic conductive polymer, n-PBDF, is combined with an exemplary p-doped polymer, PEDOT:PSS, to create a dual polymer electrochromic device. In one embodiment, n-PBDF is assembled into an electrochromic device using PEDOT:PSS as the p-doped ECP, 0.2 M TBATFSI in 1:1 in situ crosslinked PEGDA:PC as the electrolyte, and n-PBDF as the n-doped ECP. A schematic diagram is depicted in FIG. 13. As seen in FIG. 14(A), spectroelectrochemical measurements were recorded between −0.5 V and 1.5 V in 0.2 V increments (only a few voltages are shown as examples). At one electrode, n-PBDF loses electrons upon oxidation and returns to a neutral state, accompanied by an increase in the absorbance peak around 850 nm. At the other electrode, the PEDOT:PSS is reduced back to the neutral state, accompanied by an increase in the absorbance peak around 700 nm. The electrochromic device exhibits fast switching kinetics and a high optical contrast of 50%. As shown in Figure 14(B), at an applied voltage of -0.5 V, the bleached state is reached within 0.2 seconds, and at an applied voltage of 1.5 V, the colored state is achieved within 3 seconds. The device exhibits a peak absorbance of 1900 cm 2 This shows a high coloring efficiency of 1.0-1.5 μm / C, the highest value recorded among known electrochromic devices.

[0035] The above description of the disclosure has been provided for purposes of illustration and description. The disclosure is not intended to be exhaustive or to be limited to the precise form disclosed. The breadth and scope of the disclosure should not be limited by any of the above exemplary embodiments. Numerous modifications and variations will be apparent to those skilled in the art. Modifications and variations include any relevant combination of the features of the disclosure. The embodiments have been selected and described in order to best explain the principles of the disclosure and its practical application, so that those skilled in the art can understand the disclosure for various embodiments and with various modifications suitable for the particular use contemplated. It is intended that the scope of the disclosure be defined by the following claims and their equivalents. [Explanation of symbols]

[0036] 100 Electrochromic Device 102 First insulating substrate 104 First conductive layer 106 Ion storage layer 108 Electrolyte layer 110 Electrochromic Layer 112 Second conductive layer 114 Second insulating substrate 116 Circuit wiring CE Counter Electrode RE reference electrode WE working electrode 600 Electrochromic Device 602 First insulating substrate 604 First conductive layer 606 Ion storage layer 608 Electrolyte layer 610 Electrochromic Layer 612 Second conductive layer 614 Second insulating substrate 616 Circuit wiring 800 Electrochromic Device 802 First insulating substrate 804 Layer containing n-doped organic conductive polymer 806 Electrolyte layer 808 Electrochromic Layer 810 Conductive layer 812 Second insulating substrate 814 Circuit wiring 1300 Electrochromic Device 1302 First insulating substrate 1304 First conductive layer 1306 First Electrochromic Layer 1308 Electrolyte layer 1310 Second electrochromic layer 1312 Second conductive layer 1314 Second insulating substrate 1316 Circuit wiring

Claims

1. First insulating substrate, A first conductive layer disposed on a first insulating substrate, An ion storage layer is placed on the first conductive layer. An electrolyte layer placed on top of the ion storage layer, An electrochromic layer placed on top of the electrolyte layer, A second conductive layer placed on top of the electrochromic layer, and A second insulating substrate placed on a second conductive layer. Includes, The first conductive layer, the second conductive layer, or the ion storage layer, or any combination of the first conductive layer, the second conductive layer, and the ion storage layer, is defined by the formula 【Chemistry 1】 (In the formula, X is O, S, or Se, and each of m and n is an integer greater than zero, R 1 and R 2 Each of them independently contains hydrogen or C 1 ~C 10 Selected from one of the alkyl groups, M + The polymer contains an n-doped organic conductive polymer (where is a cation and m- is a negative charge that balances mM+), Electrochromic device.

2. X is O, R 1 and R 2 Each of them is hydrogen, M + The electrochromic apparatus according to claim 1, wherein is a proton.

3. The electrochromic apparatus according to claim 1, wherein the first conductive layer, the second conductive layer, or the ion storage layer, or any combination of the first conductive layer, the second conductive layer, and the ion storage layer, is made of the n-doped organic conductive polymer.

4. The electrochromic apparatus according to claim 1, wherein both the first conductive layer and the ion storage layer contain the n-doped organic conductive polymer and are integrated into a single layer.

5. The electrochromic layer is WO 3 , NiO, IrO 2 , V 2 O 5 , isoindigoid, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, electrochromic conjugated polymers containing these, and copolymers thereof, or one or more of copolymers containing acceptor units containing benzothiadiazole, benzotriazole or diketopyrrolopyrrole, the electrochromic device according to claim 1.

6. The electrochromic apparatus according to claim 1, wherein the electrolyte layer comprises a solid electrolyte or a gel electrolyte.

7. The electrochromic apparatus according to claim 1, wherein, if the ion storage layer does not contain the n-doped organic conductive polymer, the ion storage layer contains one or more oxides of metal elements in groups 4 to 12, a mixture of oxides, or an oxide doped with any other metal oxide.

8. The electrochromic apparatus according to claim 1, wherein at least one of the first conductive layer or the second conductive layer is transparent.

9. The electrochromic apparatus according to claim 1, wherein both the first conductive layer and the second conductive layer are transparent.

10. The electrochromic apparatus according to claim 1, wherein the first conductive layer or the second conductive layer includes a reflective conductive layer.

11. First insulating substrate, A first conductive layer disposed on a first insulating substrate, It is placed on the first conductive layer, and the formula 【Chemistry 2】 (In the formula, X is O, S, or Se, and each of m and n is an integer greater than zero, R 1 and R 2 Each of them independently contains hydrogen or C 1 ~C 10 Selected from one of the alkyl groups, M + A first electrochromic layer contains an n-doped organic conductive polymer (where is a cation and m- is a negative charge balancing mM+), An electrolyte layer placed on top of the first electrochromic layer, A second electrochromic layer containing p-doped electrochromic material is placed on top of the electrolyte layer. A second conductive layer disposed on the second electrochromic layer, and A second insulating substrate placed on a second conductive layer. Electrochromic apparatus, including

12. X is O, R 1 and R 2 Each of them is hydrogen, M + The electrochromic apparatus according to claim 11, wherein is a proton.

13. The electrochromic apparatus according to claim 11, wherein the first electrochromic layer disposed on the first conductive layer is made of the n-doped organic conductive polymer.

14. The p-doped electrochromic material is NiO, IrO 2 , V 2 O 5 The electrochromic apparatus according to claim 11, comprising an electrochromic conjugated polymer including isoindigo, poly(decyl viologen) and its derivatives, polyaniline and its derivatives, polypyrrole and its derivatives, polythiophene and its derivatives, poly(3,4-ethylenedioxythiophene) and its derivatives, poly(propylenedioxythiophene) and its derivatives, polyfluorene and its derivatives, polycarbazole and its derivatives, and one or more copolymers thereof, or copolymers containing acceptor units including benzothiadiazole, benzotriazole, or diketopyrrolopyrrole.

15. The electrochromic apparatus according to claim 11, wherein the p-doped electrochromic material is a p-doped electrochromic polymer.

16. The electrochromic apparatus according to claim 11, wherein the electrolyte layer comprises a solid electrolyte or a gel electrolyte.

17. The electrochromic apparatus according to claim 11, wherein one of the first conductive layer or the second conductive layer includes an inorganic conductive material.

18. The electrochromic apparatus according to claim 17, wherein the inorganic conductive material comprises indium tin oxide or a metal.

19. The electrochromic apparatus according to claim 11, wherein at least one of the first conductive layer or the second conductive layer is transparent.

20. The electrochromic apparatus according to claim 11, wherein the first conductive layer or the second conductive layer includes a reflective conductive layer.