Anode-colored electrochromic compounds, and devices and compositions containing the same.
The development of an electrochromic device and composition with an anodic coloring compound addresses solubility issues in anodized electrochromic materials, enhancing performance and solubility, suitable for electrochromic applications.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- VITRO FLAT GLASS LLC
- Filing Date
- 2022-05-27
- Publication Date
- 2026-04-14
AI Technical Summary
Anodized electrochromic materials often have insufficient solubility in liquid electrochromic compositions, leading to performance issues, and there is a need for new materials that maintain the properties and performance of existing anodized electrochromic materials.
Development of an electrochromic device and composition containing an anodic coloring electrochromic compound represented by formula (I), with R1 and R2 being linear or branched C3-C20 alkyl groups, along with a cathode component, electrolytes, polymer matrix, and solvent, to enhance solubility and performance.
The new electrochromic materials provide improved solubility and performance, maintaining or exceeding the properties of existing anodized electrochromic materials, suitable for applications in electrochromic devices.
Smart Images

Figure 0007846136000017 
Figure 0007846136000018 
Figure 0007846136000001
Abstract
Description
[Technical Field]
[0001] (Cross-reference of related applications) This application is in favor of and claims priority to U.S. Provisional Patent Application No. 63 / 194,303, filed on 28 May 2021, the disclosure of which is incorporated herein by reference in its entirety.
[0002] (Field) The present invention relates to anodized electrochromic compounds, as well as electrochromic devices and compositions containing such anodized electrochromic compounds. [Background technology]
[0003] Electrochromism involves the reversible change in a material's visible color and / or visible light transmittance upon application of an electric potential. This change in color and / or transmittance typically involves alternating cycles of oxidation and reduction charge states. Generally, materials that develop color while being reduced are called cathodically-coloring electrochromic materials, while materials that develop color while being oxidized are called anodically-coloring electrochromic materials.
[0004] Anodized electrochromic materials are, in some cases, preferably colorless in a neutral state and offer a favorable degree of color reproducibility and contrast. In some cases, anodized electrochromic materials may have insufficient solubility in the liquid electrochromic composition used to prepare the electrochromic layer in a neutral and / or radical cation state.
[0005] The development of new anodized electrochromic materials is desirable. Furthermore, it is desirable that such newly developed anodized electrochromic materials offer at least the same properties and performance as currently available anodized electrochromic materials. [Overview of the project]
[0006] According to the present invention, an electrochromic device, (a) A first substrate having a surface including a first transparent electrode layer, (b) A second substrate having a surface including a second transparent electrode layer, (c) an electrochromic layer interposed between the first transparent electrode layer and the second transparent electrode layer, Includes, The first transparent electrode layer and the second transparent electrode layer are facing each other with a gap between them. The electrochromic layer is (i) Cathode component and, (ii) Anode component and, (iii) Electrolytes and, (iv) Polymer matrix and Includes, The anode component is given by the following equation (I): [ka] An electrochromic device is provided that contains an anodic coloring electrochromic compound represented by [formula].
[0007] Referring to equation (I), R 1 and R 2 Each of these is independently linear or branched C3-C 20 Selected from alkyl groups.
[0008] Furthermore, according to the present invention, an electrochromic composition is, (i) Cathode component and, (ii) Anode component and, (iii) Electrolytes and, (iv) Polymeric thickeners and (v) Solvent and, An electrochromic composition containing the following is provided.
[0009] As described above, the anode component of the electrochromic composition contains an anodic coloring electrochromic compound represented by formula (I), wherein R 1 and R 2 are each independently selected from linear or branched C3-C 20 alkyl.
[0010] Furthermore, according to the present invention, as described above, there is provided an anodic coloring electrochromic compound represented by formula (I), wherein R 1 and R 2 are each independently selected from linear or branched C3-C 20 alkyl.
[0011] The features characterizing the present invention are specifically pointed out in the claims appended to the present disclosure and constituting a part of the present disclosure. These and other features of the present invention, its operational advantages, and the specific objects obtained by its use will be more fully understood from the following detailed description in which non-limiting embodiments of the present invention are illustrated and described.
Brief Description of the Drawings
[0012] [Figure 1] FIG. 1 is a representative side cross-sectional view of an electrochromic device according to the present invention.
[0013] [Figure 2] FIG. 2 is a representative side cross-sectional view of an electrochromic device according to the present invention, further including a gasket that serves to seal the electrochromic layer.
[0014] In FIGS. 1 and 2, like letters refer to the same components and / or elements, where appropriate, unless otherwise indicated.
Modes for Carrying Out the Invention
[0015] <� As used herein, the articles "a," "an," and "the" refer to multiple subjects unless otherwise expressly and clearly limited to a single subject.
[0016] Unless otherwise specified, all ranges or ratios disclosed herein should be understood to encompass all subranges or sub-ratios contained therein. For example, a specified range or ratio of "1 to 10" should be considered to include all subranges between (and including) the minimum value "1" and the maximum value "10". That is, all subranges or sub-ratios that begin at or above the minimum value "1" and end at or below the maximum value "10", including, but not limited to, "1 to 6.1", "3.5 to 7.8", "5.5 to 10", etc.
[0017] Where used herein, unless otherwise specified, the left-to-right representation of a linking group, such as a divalent linking group, includes, but is not limited to, other appropriate orientations, such as right-to-left orientation. For non-limiting illustrative purposes, the left-to-right representation of a divalent linking group is: [ka] Alternatively, the equivalent -C(O)O- is a right-to-left representation of a divalent linking group: [ka] Or it includes the equivalent -O(O)C- or -OC(O)-.
[0018] All figures used in this specification and in the claims, such as amounts of components and reaction conditions, should be understood to be modified in all cases by the term "approximately," unless otherwise indicated in the examples or elsewhere.
[0019] When used herein, the molecular weight values of polymers, such as weight-average molecular weight (Mw) and number-average molecular weight (Mn), are determined by gel permeation chromatography using appropriate standards, such as polystyrene standards.
[0020] As used herein, the polydispersity index (PDI) value represents the ratio of the weight-average molecular weight (Mw) of a polymer to its number-average molecular weight (Mn) (i.e., Mw / Mn).
[0021] As used herein, the term "polymer" means homopolymer (e.g., prepared from a single monomer species), copolymer (e.g., prepared from at least two monomer species), and graft polymer.
[0022] As used herein, the term "(meth)acrylate" and similar terms such as "(meth)acrylic acid ester" mean methacrylate and / or acrylate. As used herein, the term "(meth)acrylic acid" means methacrylic acid and / or acrylic acid.
[0023] The anodic-oxidized electrochromic compounds / materials of the present invention are also referred to herein as anodic-oxidized electrochromic bithienodioxine compounds / materials.
[0024] The anodic electrochromic compounds of the present invention described herein, including but not limited to the anodic electrochromic compounds represented by formula (I), may optionally further include one or more co-products resulting from the synthesis of such compounds.
[0025] As used herein, the term “electrochromic” and similar terms such as “electrochromic compound” mean having an absorption spectrum of at least visible radiation that changes in response to an applied potential. Furthermore, as used herein, the term “electrochromic material” means any substance that is adapted to display electrochromic properties (for example, adapted to have an absorption spectrum of at least visible radiation that changes in response to an applied potential) and contains at least one electrochromic compound.
[0026] As used herein, the term “electric potential” and related terms such as “electrical potential” mean an electric potential capable of causing a response in an electrochromic material, including, but not limited to, transforming it from one form or state to another, as will be further described herein.
[0027] Where used herein to modify the term “state,” the terms “first” and “second” are not intended to refer to a specific order or time series, but rather to two different states or properties. For non-limiting illustrative purposes, the first and second states of an electrochromic compound, such as an anodized electrochromic compound, may differ with respect to at least one optical property, such as absorption of visible and / or UV radiation, but are not limited to these. Accordingly, according to various non-limiting embodiments disclosed herein, the anodized electrochromic compound of the present invention may have different absorption spectra in each of the first and second states. For example, though not limited herein, the anodized electrochromic compound of the present invention may be transparent in the first state and colored in the second state. Alternatively, the anodized electrochromic compound of the present invention may have a first color in the first state and a second color in the second state.
[0028] As used herein, the term “display” means a visible or machine-readable representation of information in the form of words, numbers, symbols, designs, or drawings. Non-exclusive examples of display elements include screens, monitors, and security elements, such as security marks.
[0029] As used herein, the term “window” means an opening adapted to allow the transmission of radiation. Non-exclusive examples of windows include transparent parts of automobiles and aircraft, windshields, filters, shutters, and light switches.
[0030] As used herein, the term "mirror" refers to a surface that specularly reflects most of the incident light.
[0031] As used herein, spatial or directional terms such as “left,” “right,” “inside,” “outside,” “above,” and “below” relate to the invention as shown in the drawings. However, it should be understood that the invention can assume various alternative directions, and therefore such terms should not be considered limiting.
[0032] As used herein, the terms “formed over,” “deposited over,” “provided over,” “applied over,” “present over,” or “placed over” mean formed over, deposited over, provided over, applied over, present over, or placed over a substrate element or the surface of a substrate element, but not necessarily in direct (or adjacent) contact with the substrate element or the surface of a substrate element. For example, a layer “placed over” a substrate does not preclude the presence of one or more other layers, coatings, or films of the same or different composition located between the placed or formed layer and the substrate.
[0033] As used herein, the terms “interposed” and “interposed between” mean that they exist or are positioned between an element above it and / or an element below it, or between its surface, but they do not necessarily have to be in direct (or adjacent) contact with the element above it and / or an element below it, or between its surface. For example, an “interposed” layer between a first substrate and a second substrate does not preclude the presence of one or more other layers, coatings, or films of the same or different composition located between the interposed layer and the first and / or second substrates.
[0034] All documents referred to herein, including but not limited to issued patents and patent applications, are deemed to be incorporated by reference unless otherwise stated.
[0035] As used herein, the description of a "linear or branched" group, such as a linear or branched alkyl group, means a methylene group or a methyl group, a linear C2-C2 group, etc. 20 Linear groups such as alkyl groups, and branched C3-C3 groups. 20 It is understood to contain appropriately branched groups such as alkyl groups.
[0036] As used herein, the term "alkyl" refers to linear or branched, cyclic or acyclic C1-C123 25 This refers to alkyl groups. Linear or branched alkyl groups include C1-C 25 Alkyl, for example, C1-C 20 Alkyl, for example, C2~C 10 Alkyl, for example, C1-C 12 Examples of alkyl groups include C1-C6 alkyl groups. Various alkyl groups of the present invention can be selected; examples of alkyl groups are further described herein, but are not limited to those described herein. Alkyl groups may include "cycloalkyl" groups. As used herein, the term "cycloalkyl" refers to C3-C6 alkyl groups. 12 Cycloalkyl (cyclic C3~C) 10This refers to a suitable cyclic group, including but not limited to alkyl or cyclic C5-C7 alkyl groups. Examples of cycloalkyl groups are, but are not limited to, those described further herein. As used herein, the term “cycloalkyl” also includes: crosslinked ring polycycloalkyl groups (or crosslinked ring polycyclic alkyl groups), e.g., bicyclo[2.2.1]heptyl (or norbornyl), bicyclo[2.2.2]octyl, and condensed ring polycycloalkyl groups (or condensed ring polycyclic alkyl groups), e.g., octahydro-1H-indenyl, decahydronaphthalenyl, etc.
[0037] As used herein, the term "heterocycloalkyl" means, for example, C2-C 12 Heterocycloalkyl groups, for example, C2-C 10 Heterocycloalkyl groups, such as C5-C7 heterocycloalkyl groups, but not limited to these, include groups having at least one heteroatom in a cyclic ring, such as O, S, N, P, and combinations thereof, but not limited to these, and meaning groups that are appropriately cyclic. Examples of heterocycloalkyl groups include, but are not limited to, imidazolyl, tetrahydrofuranil, tetrahydropyranil, and piperidinil. The term "heterocycloalkyl" as used herein also includes, but is not limited to, crosslinked polycyclic heterocycloalkyl groups such as 7-oxabicyclo[2.2.1]heptanil, and condensed polycyclic heterocycloalkyl groups such as octahydrocyclopenta[b]pyranil and octahydro-1-hysoclomenyl.
[0038] As used herein, the term "aryl" and related terms such as "aryl group" mean aromatic cyclic monovalent hydrocarbon radicals. As used herein, the term "aromatic" and related terms such as "aromatic group" mean cyclic conjugated hydrocarbons whose stability (due to π-electron delocalization) is significantly greater than the stability of a hypothetical localized structure. Examples of aryl groups include C6-C6. 14Examples of aryl groups include, but are not limited to, phenyl, naphthyl, phenanthryl, and anthracenyl.
[0039] When used herein, the term "heteroaryl" refers to C3-C 18 Heteroaryls, for example, C3-C 10 This term includes, but is not limited to, heteroaryl groups (including fused polycyclic heteroaryl groups), and refers to aryl groups having at least one heteroatom within an aromatic ring, or in the case of fused polycyclic heteroaryl groups, at least one heteroatom within one aromatic ring. Examples of heteroaryl groups include, but are not limited to, furanyl, pyranyl, pyridinyl, quinolinyl, isoquinolinyl, and pyrimidinyl.
[0040] The term "aralkyl" as used herein refers to C6-C 24 Aralkill, for example, C6~C 10 This term includes, but is not limited to, aralkyl groups, and refers to alkyl groups substituted with an aryl group. Examples of aralkyl groups include, but are not limited to, benzyl and phenethyl.
[0041] Representative alkyl groups include, but are not limited to, methyl, ethyl, propyl, isopropyl, butyl, isobutyl, sec-butyl, tert-butyl, pentyl, neopentyl, hexyl, heptyl, octyl, nonyl, and decyl. Representative alkenyl groups include, but are not limited to, vinyl, allyl, and propenyl. Representative alkynyl groups include, but are not limited to, ethynyl, 1-propynyl, 2-propynyl, 1-butynyl, and 2-butynyl. Representative cycloalkyl groups include, but are not limited to, cyclopropyl, cyclobutyl, cyclopentyl, cyclohexyl, and cyclooctyl.
[0042] The term "nitrogen-containing heterocycle," for example, "nitrogen-containing heterocyclic group" or "nitrogen-containing heterocyclic substituent," as used herein, includes, but is not limited to, nitrogen-containing rings in which the nitrogen-containing ring is bonded via a cyclic nitrogen. Examples of nitrogen-containing heterocycles include, but are not limited to, cyclic aminos such as morpholino, piperidino, pyrrolidino, and decahydroisoquinolino, and heteroaromatics such as imidazole, pyrrole, indole, and carbazole.
[0043] As used herein, “substituted” group means a group comprising an alkyl group, heterocycloalkyl group, aryl group, and / or heteroaryl group, wherein at least one hydrogen is substituted or substituted with a group other than hydrogen or a “substituted”: for example, alkoxy groups, halo groups (e.g., F, Cl, I, and Br), hydroxyl groups, thiol groups, alkylthio groups, arylthio groups, ketone groups, aldehyde groups, carboxylic acid ester groups, carboxylic acid groups, phosphate groups, phosphate ester groups, sulfonic acid groups, sulfonic acid ester groups, nitro groups, cyano groups, alkyl groups, alkenyl groups, alkynyl groups, haloalkyl groups, perhaloalkyl groups, heterocycloalkyl groups, aryl groups (including alkaryl groups, hydroxyl-substituted aryls such as phenol, and polycondensed ring aryls), aralkyl groups, heteroaryl groups (including polycondensed ring heteroaryl groups), amino groups, for example, -N(R) 11’ )(R 12’ ), where R 11’ and R 12’ Each of these is independently selected from, for example, hydrogen, alkyl, heterocycloalkyl, aryl, or heteroaryl, carboxylate groups, siloxane groups, alkoxysilane groups, polysiloxane groups, amide groups, carbamate groups, carbonate groups, urea groups, trialkylsilyl groups, nitrogen-containing heterocycles, or combinations thereof (including classes and examples further described herein). Substituents of a substituted group are more specifically listed according to some embodiments of the present invention.
[0044] As used herein, the term "halo," and related terms such as "halo group," "halo substituent," "halogen group," and "halogen substituent," refer to single-bonded halogen groups, such as -F, -Cl, -Br, and I.
[0045] As used herein, “halo-substituted” and related terms (including, but not limited to, haloalkyl groups, haloalkenyl groups, haloalkynyl groups, haloaryl groups, and haloheteroaryl groups) mean a group in which at least one, and up to all, of its available hydrogen groups are substituted with halo groups such as F, Cl, or Br. The term “halo-substituted” includes “perhalo-substituted.” As used herein, the term “perhalo-substituted” and related terms (including, but not limited to, perhaloalkyl groups, perhaloalkenyl groups, perhaloalkynyl groups, perhaloaryl groups, or perhaloheteroaryl groups) mean a group in which all of its available hydrogen groups are substituted with halo groups. For non-limiting illustrative purposes, perhalomethyl is -CX3 and perhalophenyl is -C6X5, where X represents one or more halo groups such as F, Cl, Br, or I.
[0046] As used herein, “at least one” is synonymous with “one or more,” whether the elements are listed contiguously or separately. For example, the expressions “at least one of A, B, and C” and “at least one of A, B, and C” mean one of A, B, or C, or any combination of two or more of A, B, or C, respectively. For example, they mean A only, B only, C only, or A and B, A and C, B and C, or all of A, B, and C.
[0047] As used herein, “selected from” is synonymous with “chosen from,” whether the elements are listed contiguously or separately. Furthermore, the expressions “selected from A, B, and C” and “selected from A, B, or C” mean one of A, B, or C, or any combination of two or more of A, B, or C, respectively. For example, it means A only, B only, C only, or A and B, A and C, B and C, or all of A, B, and C.
[0048] In the discussion of the present invention as described herein, certain features may be described as “particularly” or “preferred” within certain limitations (for example, “preferred,” “more preferably,” or “even more preferably” within certain limitations). The present invention should be understood to be not limited to such specific limitations or preferred limitations, but to encompass the entire scope of this disclosure.
[0049] As used herein, and according to some embodiments, the term “ketone,” as in relation to the groups of the compounds and components of the present invention, and the substituents of various groups, as well as related terms such as “ketone group” and “ketone substituent,” include substances represented by the formula -C(O)R, where R is selected from groups other than hydrogen, such as those described below.
[0050] As used herein, and according to some embodiments, the term "carboxylic acid," as in relation to the groups of the compounds and components of the present invention and the substituents of various groups, as well as related terms such as "carboxylic acid group" and "carboxylic acid substituent," include substances represented by -C(O)OH.
[0051] As used herein, and according to some embodiments, the term "ester," as in relation to the groups of the compounds and components of the present invention and the substituents of various groups, as well as related terms such as "ester group" and "ester substituent," means a carboxylic acid ester group represented by -C(O)OR, where R is selected from groups other than hydrogen, as described below.
[0052] As used herein and according to some embodiments, the term “carboxylate,” as in relation to the groups of the compounds and components of the present invention and the substituents of various groups, as well as related terms such as “carboxylate group” and “carboxylate substituent,” include substances represented by the formula -OC(O)R, where R is selected from the groups described below.
[0053] As used herein, and according to some embodiments, the term “amide” as relating to the groups of the compounds and components of the present invention, and the substituents of various groups, as well as related terms such as “amide group” and “amide substituent,” include substances represented by -C(O)N(R)(R) or N(R)C(O)R, where each R is independently selected from those groups as described below.
[0054] As used herein and according to some embodiments, the term “carbonate” as relating to the groups of the compounds and components of the present invention, and the substituents of various groups, as well as related terms such as “carbonate group” and “carbonate substituent,” include substances represented by the formula -OC(O)OR, where R is selected from groups other than hydrogen, such as those described below.
[0055] As used herein, and according to some embodiments, the term "carbamate," as in relation to the groups of the compounds and components of the present invention, and substituents of various groups, as well as related terms such as "carbamate group" and "carbamate substituent," include substances represented by -OC(O)N(R)(H) or N(H)C(O)OR, where R is independently selected in each case from the groups other than hydrogen, as described below.
[0056] As used herein, and according to some embodiments, the term “urea,” as in relation to the groups of the compounds and components of the present invention, and substituents of various groups, as well as related terms such as “urea group” and “urea substituent,” include substances represented by the formula -N(R)C(O)N(R)(R), where each R is independently selected from the groups described below.
[0057] As used herein, and according to some embodiments, the term "siloxy" as relating to the groups of the compounds and components of the present invention, as well as substituents of various groups, and related terms such as "siloxy group" and "siloxy substituent," include substances represented by the formula -O-Si(R)3, where each R is independently selected from groups other than hydrogen, as described below.
[0058] As used herein, and according to some embodiments, the term "alkoxysilane" as relating to the groups of the compounds and components of the present invention, as well as substituents of various groups, and related terms such as "alkoxysilane group" and "alkoxysilane substituent" are -Si(OR'') w (R) t The substance comprises the formula, where w is 1 to 3, t is 0 to 2, and the sum of w and t is 3, and each w's R'' is independently selected from alkyl groups, and each t's R is independently selected from groups other than hydrogen, as described below.
[0059] As used herein, and according to some embodiments, the term “polysiloxane,” as in relation to the groups of the compounds and components of the present invention, and the substituents of various groups, as well as related terms such as “polysiloxane group” and “polysiloxane substituent,” include substances represented by the following formula (A): [ka] Referring to equation (A), t' is 2 or greater, for example, 2 to 200, and R for each t' f and R gEach of these is independently selected from a group R other than hydrogen, as described below, h This is an independent base R as described below.
[0060] Unless otherwise specified, each R group of the above-mentioned ketones, esters (carboxylic acid esters), carboxylates, amides, carbonates, carbamates, ureas, siloxanes, alkoxysilane groups, and polysiloxane groups is independently selected in each case from hydrogen, alkyl, haloalkyl, perhaloalkyl, cycloalkyl, heterocycloalkyl, aryl, heteroaryl, and combinations thereof (including those classes and examples previously described herein).
[0061] The anodic coloring electrochromic compounds of the present invention, such as those represented by formula (I), and various groups thereof, will be described in further detail herein, but are not limited to these.
[0062] In some embodiments of the present invention, referring to formula (I), R 1 and R 2 Each of these is independently linear or branched C3-C 20 Selected from alkyl groups.
[0063] In some further embodiments of the present invention, referring to formula (I), R 1 and R 2 Each of these is independently linear or branched C3-C 10 Selected from alkyl groups.
[0064] In some additional embodiments of the present invention, referring to formula (I), R 1 and R 2 Each of these is independently selected from linear or branched C4-C8 alkyl groups.
[0065] According to some embodiments, R of formula (I) 1 and R 2Examples of alkyl groups in which each of the elements can be independently selected include, but are not limited to, n-propyl, iso-propyl, n-butyl, sec-butyl, tert-butyl, n-pentyl, branched pentyl, n-hexyl, branched hexyl, n-heptyl, branched heptyl, n-octyl, branched octyl, n-nonyl, branched nonyl, n-decyl, branched decyl, n-undecyl, branched undecyl, n-dodecyl, branched dodecyl, n-tridecyl, branched tridecyl, n-tetradecyl, branched tetradecyl, n-pentadecyl, branched pentadecyl, n-hexadecyl, branched hexadecyl, n-heptadecyl, branched heptadecyl, n-octadecyl, branched octadecyl, n-nonadecyl, branched nonadecyl, n-icosanyl, and branched icosanyl.
[0066] The anodic electrochromic compounds of the present invention, for example, the compound represented by formula (I), can be prepared according to methods known in the art. In some embodiments, the anodic electrochromic compounds of the present invention, such as the one represented by formula (I), can be prepared according to the following general and non-limiting description. Referring to scheme (1) below, compound (1) (2,3-dihydrothieno[3,4-b][1,4]dioxine) is treated with n-butyllithium (nBuLi) in tetrahydrofuran (THF) at -78°C, followed by quenching with disulfide (R-SS-R), and then purified / isolated by chromatography to form compound (2) (5-(R-thio)-2,3-dihydrothieno[3,4-b][1,4]dioxine). Compound (2) is treated with n-butyllithium (nBuLi) in tetrahydrofuran (THF) at -78°C, and then combined with iron(III) tris(acetylacetonate) (Fe(AcAc)3), resulting in the formation of compound (3). In scheme (1), the R groups of the disulfide and compound (3) are independently linear or branched C3-C3 groups. 20 Selected from alkyl groups. [ka]
[0067] According to several embodiments of the present invention, an electrochromic device is provided. For non-limiting illustrative purposes, an electrochromic device (3) according to the present invention is shown in Figure 1. The electrochromic device (3) includes a first substrate (11) having a first surface (14) and a second surface (17). The first surface (14) of the first substrate (11) includes a conductive first transparent electrode layer (20). The first transparent electrode layer (20) is present on at least a portion of the first surface (14) of the first substrate (11). In some embodiments, the first transparent electrode layer (20) is in the form of one or more patterns (e.g., one or more designs and / or displays) on the first surface (14) of the first substrate (11). In some further embodiments, the first transparent electrode layer (20) forms a substantially continuous layer on the first surface (14) of the first substrate (11). In some embodiments, the first transparent electrode layer (20) is in electrical contact with at least one first conductor (21).
[0068] The electrochromic device (3) includes a second substrate (23) having a first surface (26) and a second surface (29). The first surface (26) of the second substrate (23) includes a conductive second transparent electrode layer (32). The second transparent electrode layer (32) is located on at least a portion of the first surface (26) of the second substrate (23). In some embodiments, the second transparent electrode layer (32) is in the form of one or more patterns (e.g., one or more designs and / or displays) on the first surface (26) of the second substrate (23). In some further embodiments, the second transparent electrode layer (32) forms a substantially continuous layer on the first surface (26) of the second substrate (23). In some embodiments, the second transparent electrode layer (32) is in electrical contact with at least one second conductor (33).
[0069] Referring further to the electrochromic device (3) in Figure 1, the first transparent electrode layer (20) and the second transparent electrode layer (32) are facing each other with a gap between them.
[0070] The electrochromic device (3) further includes an electrochromic layer (35) interposed between a first transparent electrode layer (20) and a second transparent electrode layer (32). In some embodiments, the electrochromic layer (35) is interposed between the first transparent electrode layer (20) and the second transparent electrode layer (32) and is adjacent to the first transparent electrode layer (20) and the second transparent electrode layer (32).
[0071] According to some embodiments of the present invention, the electrochromic device further includes a gasket that serves to seal at least the electrochromic layer. Non-limitingly referring to Figure 2, the electrochromic device (5) is similar to the electrochromic device (3), but further includes a gasket (41) located in a recess (38) extending around the entire electrochromic device (5). In some embodiments, the recess (38) is an annular ring (38). Further referring to Figure 2, the first substrate (11) and the first transparent electrode layer (20), and the second substrate (23) and the second transparent electrode layer (32) extend on / later outward of the electrochromic layer (35). The portions of the first transparent electrode layer (20) and the second transparent electrode layer (32) that extend laterally outward of the electrochromic layer (35) together define the recess (38) in which the gasket (41) is located. In some embodiments, the gasket (41) has oxygen barrier properties and plays a role in minimizing contact between oxygen and the electrochromic layer (35) after the electrochromic device (5) has been manufactured. In some embodiments, the gasket (41) is composed of an organic polymer and / or ceramic material. According to some embodiments, the gasket (41) is placed and positioned in the recess (38) prior to the vacuum lamination of the stack, as further described herein.
[0072] In some embodiments of the present invention, the first and second substrates of the electrochromic device are independently selected from transparent substrates. The transparent substrates, from which the first and second substrates can be independently selected, are, in some embodiments, made from materials including but not limited to silica glass, organic polymers (such as polycarbonate polymers), and combinations thereof. In some embodiments, the transparent substrates, from which the first and second substrates can be independently selected, are made from materials including silica glass. The first and second substrates can each have any suitable thickness independently. In some embodiments, the first and second substrates each have a thickness of 2 mm to 10 mm independently.
[0073] The first and second transparent electrode layers of the electrochromic device of the present invention include, in some embodiments, conductive inorganic oxides, conductive organic materials, conductive metals, and / or conductive carbon, such as carbon nanotubes and / or graphene. Examples of conductive inorganic oxides include, but are not limited to, tin oxide, which can be doped with doping materials such as indium, and zinc oxide, which may further include, for example, aluminum. Examples of conductive organic materials include, but are not limited to, poly(3,4-ethylenedioxythiophene), poly(4,4-dioctylcyclopentadithiophene), poly(3,4-ethylenedioxythiophene), and poly(styrene sulfonate). In some embodiments, the first and second transparent electrode layers can each independently take the form of a grid of metal wires, a grid of carbon nanotubes, and / or a layer of graphene. In some embodiments, the first and second transparent electrode layers are each independently selected from translucent metal layers. In some further embodiments, one of the first and second transparent electrode layers comprises (or is associated with) a reflective metal layer (e.g., aluminum, gold, and / or silver), and the electrochromic device is a reflective electrochromic device such as a controllably reflective mirror.
[0074] According to some embodiments, the first and second electrode layers of the electrochromic device of the present invention each independently comprise a conductive material selected from indium tin oxide, poly(3,4-ethylenedioxythiophene):poly(styrene sulfonate), or a combination thereof.
[0075] The first and second electrode layers of the electrochromic device according to some embodiments of the present invention can each have any suitable thickness independently, provided they are transparent and conductive. In some embodiments, the first and second electrode layers of the electrochromic device according to the present invention each have a thickness of 0.01 micrometers to 10 micrometers independently.
[0076] The electrochromic layer of the electrochromic device of the present invention comprises an anode component, which comprises an anodic colored electrochromic compound represented by formula (I), as described above herein.
[0077] In addition to the anodic colored electrochromic compound represented by formula (I), the anodic component of the electrochromic layer optionally includes, in some embodiments, one or more additional anodic electrochromic compounds, including, but not limited to, ferrocene and / or ferrocene derivatives (in which at least one cyclopentadienyl ring is substituted with at least one substituent, including substituents as previously described herein), 5,10-dihydro-5,10-di(linear or branched C1-C) 10 Alkyl)phenazines, e.g., 5,10-dihydro-5,10-dimethylphenazine; N-substituted phenoxazines, e.g., N-phenylphenoxazine; and combinations thereof.
[0078] In some embodiments, the anodic component of the electrochromic layer of the electrochromic device of the present invention is essentially composed of an anodic colored electrochromic compound represented by formula (I), as described herein. In some further embodiments, the anodic component of the electrochromic layer of the electrochromic device of the present invention is composed of an anodic colored electrochromic compound represented by formula (I), as described herein.
[0079] The electrochromic layer of the electrochromic device of the present invention includes a cathode component. In some embodiments, the cathode component includes at least one material that is reversibly reduced, because the anodic colored electrochromic material represented by formula (I) is reversibly oxidized. In some embodiments, the cathode component includes, but is not limited to, one or more dipyridinium (or dipyridinium-based) cations (e.g., 4,4'-dipyridinium, 2,2'-dipyridinium, 1,1'-dipyridinium, and / or 1,1'-dipyridinium, etc., in which nitrogen atoms are linked by a divalent linking group, e.g., a divalent alkyl linking group) and / or derivatives thereof, wherein optionally, one or more quaternary nitrogen atoms are bonded to a group other than hydrogen, e.g., an alkyl group or an aryl group.
[0080] In some embodiments, the cathode component is given by the following formula (II): [ka] It contains a 1,1'-disubstituted-4,4'-dipyridinium cation represented by [the formula].
[0081] Referring to equation (II), R 3 and R 4 Each of these is independently linear or branched C1-C 10 Selected from alkyl, unsubstituted aryl, and substituted aryl. 3 and R 4Examples of aryl groups that can be independently selected from the unsubstituted and substituted aryl groups include, but are not limited to, the aryl groups previously mentioned herein, such as phenyl, naphthyl, phenanthryl, and anthracenyl. 3 and R 4 Substituents of the substituted aryl group that can be independently selected include those previously described herein. In some embodiments, R 3 and R 4 Each substituent of the substituted aryl group, which can be independently selected, is independently selected from alkoxy groups, halo groups (e.g., F, Cl, I, and Br), hydroxyl groups, thiol groups, alkylthio groups, arylthio groups, ketone groups, aldehyde groups, haloalkyl groups, perhaloalkyl groups, heterocycloalkyl groups, aryl groups, aralkyl groups (such as benzyl groups), heteroaryl groups, and amino groups.
[0082] Referring further to Figure (II), according to some further embodiments, R 3 and R 4 Each of these is independently selected from linear or branched C1-C4 alkyl groups, unsubstituted phenyl groups, and substituted phenyl groups. 3 and R 4 Examples of substituents on the substituted phenyl group that can be independently selected include those previously described herein. In some embodiments, R 3 and R 4 Each substituent of the substituted phenyl group, which can be independently selected, is independently selected from alkoxy groups, halo groups (e.g., F, Cl, I, and Br), hydroxyl groups, thiol groups, alkylthio groups, arylthio groups, ketone groups, aldehyde groups, haloalkyl groups, perhaloalkyl groups, aryl groups, and aralkyl groups (e.g., benzyl groups).
[0083] According to some embodiments, with further reference to equation (II), R 3 C1-C are linear or branched C1-C 10 Selected from alkyl, R 4R is selected from aryl and substitute aryl. In some additional embodiments, R 3 R is selected from linear or branched C1-C4 alkyl groups. 4 This is selected from unsubstituted phenyl and substituted phenyl.
[0084] In some embodiments, the cathode component is, in addition to, or instead of, the 1,1'-disubstituted-4,4'-dipyridinium cation represented by formula (II), the following formula (III): [ka] It contains a 1,1-(alkane-alpha,omega-diyl)-bis-(1'-disubstituted-4,4'-dipyridinium) cation represented by [the formula].
[0085] Referring to formula (III), according to some embodiments, R 5 and R 7 Each of these is independently linear or branched C1-C 10 Selected from alkyl, unsubstituted aryl, and substituted aryl. 5 and R 7 Examples of aryl groups that can be independently selected from the unsubstituted and substituted aryl groups include, but are not limited to, the aryl groups previously mentioned herein, such as phenyl, naphthyl, phenanthryl, and anthracenyl. 5 and R 7 Substituents of the substituted aryl group that can be independently selected include those previously described herein. In some embodiments, R 5 and R 7 Each substituent of the substituted aryl group, which can be independently selected, is independently selected from alkoxy groups, halo groups (e.g., F, Cl, I, and Br), hydroxyl groups, thiol groups, alkylthio groups, arylthio groups, ketone groups, aldehyde groups, haloalkyl groups, perhaloalkyl groups, heterocycloalkyl groups, aryl groups, aralkyl groups (such as benzyl groups), heteroaryl groups, and amino groups.
[0086] Referring further to formula (III), according to some further embodiments, R 5 and R 7 are each independently selected from linear or branched C1-C4 alkyl, unsubstituted phenyl, and substituted phenyl. Each substituent of the substituted phenyl group from which R 5 and R 7 can be independently selected includes the substituents as described hereinabove. In some embodiments, each substituent of the substituted phenyl group from which R 5 and R 7 can be independently selected is independently selected from an alkoxy group, a halo group (e.g., F, Cl, I, and Br), a hydroxyl group, a thiol group, an alkylthio group, an arylthio group, a ketone group, an aldehyde group, a haloalkyl group, a perhaloalkyl group, an aryl group, and an aralkyl group (e.g., a benzyl group).
[0087] Referring further to formula (III), R 6 is a divalent linear or branched C1-C 10 alkane linking group. In some embodiments, R 6 of formula (II) is a divalent linear or branched C1-C8 alkane linking group. In some further embodiments, R 6 of formula (III) is a divalent linear or branched C3-C5 alkane linking group.
[0088] According to some embodiments of the present invention, the cathode component further comprises a counter anion. In some further embodiments, the cathode component contains an equal number of cations and counter anions (or anions), and correspondingly, the cathode component has a net neutral charge. Each counter anion of the cathode component, in some embodiments, is BF4 - , PF6 - , ClO4 - , CF3SO3 - or (CF3SO2)2N - and (CF3SO2)3C - is independently selected from the group consisting of.
[0089] The electrochromic layer of the electrochromic device of the present invention further comprises an electrolyte. In some embodiments, the electrolyte comprises at least one electrolyte anion and at least one electrolyte cation. In some embodiments, the electrolyte of the electrochromic layer comprises an equal number of electrolyte anions and electrolyte cations and, accordingly, has a net neutral charge.
[0090] In some embodiments, the electrolyte of the electrochromic layer comprises at least one electrolyte anion, each electrolyte anion independently selected from chlorides, hexafluorophosphates, and bis(perfluoro(linear or branched C1-C6 alkylsulfonyl)imides). In some further embodiments, the electrolyte of the electrochromic layer comprises at least one electrolyte cation, each electrolyte cation independently selected from sodium, potassium, lithium, 1-(linear or branched C1-C6 alkyl)-3-(linear or branched C1-C6 alkyl)imidazolium, and 1-(linear or branched C1-C6 alkyl)-1-(linear or branched C1-C6 alkyl)piperidinium.
[0091] In some embodiments, the electrolyte of the electrochromic layer comprises at least one electrolyte anion and at least one electrolyte cation, each electrolyte anion independently selected from bis(perfluoro(linear or branched C1-C6 alkylsulfonyl)imide), and each electrolyte cation independently selected from 1-(linear or branched C1-C6 alkyl)-3-(linear or branched C1-C6 alkyl)imidazolium, or 1-(linear or branched C1-C6 alkyl)-1-(linear or branched C1-C6 alkyl)piperidinium.
[0092] In some further embodiments, the electrolyte of the electrochromic layer comprises at least one electrolyte anion and at least one electrolyte cation, each electrolyte anion being bis(trifluromethylsulfonyl)imide, and each electrolyte cation being independently selected from 1-ethyl-3-methylimidazolium, 1-butyl-3-methylimidazolium, and 1-methyl-1-propylpiperidinium.
[0093] The electrochromic layer of the electrochromic device of the present invention comprises a polymer matrix. The polymer matrix comprises at least one polymer. In some embodiments, the polymer matrix is a gelling polymer matrix, a crosslinking polymer matrix, and / or a thermoplastic polymer matrix.
[0094] In some embodiments, the polymer matrix comprises a polymer, the polymer comprising at least one of poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C1-C6 alkylene)), or poly((linear or branched C1-C8 alkyl)(meth)acrylate).
[0095] According to some embodiments of the electrochromic device of the present invention, the cathode component is present in an amount of 0.8% to 6.25% by weight, the anode component is present in an amount of 0.8% to 6.25% by weight, the electrolyte is present in an amount of 16.4% to 25.0% by weight, and the polymer matrix is present in an amount of 62.5% to 82.0% by weight. The weight percentages in each case are based on the total weight of the cathode component, anode component, electrolyte, and polymer matrix.
[0096] The electrochromic layer of the electrochromic device of the present invention may, in some embodiments, further include, but is not limited to, one or more additives recognized in the art, such as thermal stabilizers, UV stabilizers, rheology modifiers, static colorants (such as static hues and / or static dyes), dynamic additives (to promote electrode reactions), and combinations thereof. An unspecified class of thermal stabilizers recognized in the art are phenols, e.g., 2,6-ditterybutylphenol, and compounds containing a 2,6-ditterybutylphenol group or moiety. An unspecified class of UV stabilizers recognized in the art are hindered amine light stabilizers (HALS), e.g., 2,2,6,6-tetramethylpiperidine, and compounds containing a 2,2,6,6-tetramethylpiperidine group or moiety. Static colorants include colorants whose absorption spectrum does not change with respect to actinic radiation (such as UV and / or visible light) or applied potential, and do not include photochromic or electrochromic compounds. An unrestricted class of dynamic additives includes, for example, alkali metal and alkaline earth metal salts of perchlorates, tetrafluoroborates, and hexafluorophosphates, as well as salts such as tetraalkylammonium salts. Unrestricted examples of rheological modifiers include dialkoxyacetophenones, e.g., 3',4'-dimethoxyacetophenone, and optionally substituted cycloalkylaryl ketones, e.g., 1-hydroxycyclohexylphenyl ketone. Each optional additive can be present in any suitable amount of activity, such as 0.05% to 5% by weight, based on the total solids weight of the electrochromic layer (including the weight of the optional additive).
[0097] Examples of articles, such as manufactured goods, that may include, or may be defined by, the electrochromic devices of the present invention include, but are not limited to, energy-efficient and / or privacy-enhancing transparent bodies (or windows), such as transparent bodies or windows for architectural and transport applications, mirrors such as rearview mirrors, optical filters, and ophthalmic products such as corrective lenses, non-corrective lenses, magnifying lenses, protective lenses, and visors, as well as any other articles or applications where variable and controllable light transmittance and / or color is desired.
[0098] The present invention also relates to an electrochromic composition comprising: (i) a cathode component, (ii) an anode component, (iii) an electrolyte, a polymeric thickener, and (v) a solvent. The anode component of the electrochromic composition of the present invention comprises an anodic colored electrochromic compound represented by formula (I), as previously described herein.
[0099] The cathode component, anode component, and electrolyte of the electrochromic composition are as previously described herein with respect to the electrochromic layer of the electrochromic device of the present invention.
[0100] In some embodiments, the polymeric thickener of the electrochromic composition includes a polymer, the polymer comprising at least one of poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C1-C6 alkylene)), or poly((linear or branched C1-C8 alkyl)(meth)acrylate).
[0101] The electrochromic composition of the present invention comprises a solvent. In some embodiments, the solvent of the electrochromic composition comprises at least one of ethylene carbonate, propylene carbonate, gamma-butyrolactone, gamma-valerolactone, N-methylpyrrolidone, polyethylene glycol, or a carboxylic acid ester of polyethylene glycol.
[0102] According to some embodiments of the electrochromic composition of the present invention, the cathode component is present in an amount of 0.2% to 3.6% by weight, the anode component is present in an amount of 0.2% to 3.6% by weight, the electrolyte is present in an amount of 3.8% to 14.3% by weight, the polymer thickener is present in an amount of 19.2% to 35.7% by weight, and the solvent is present in an amount of 42.8% to 76.6% by weight. The weight percentages in each case are based on the total weight of the cathode component, anode component, electrolyte, polymer thickener, and solvent.
[0103] The electrochromic compositions of the present invention may, in some embodiments, include, but are not limited to, one or more additives recognized in the art, such as thermal stabilizers, UV stabilizers, rheology modifiers, static colorants (such as static hues and / or static dyes), dynamic additives (to promote electrode reactions), and combinations thereof. Any additive is, in each case, as already described herein with respect to the electrochromic devices of the present invention. Each any additive may be present in the electrochromic composition in any suitable activity amount, such as 0.05% to 5% by weight, based on the total weight of the electrochromic composition (including the weight of any additive).
[0104] According to some embodiments of the present invention, the electrochromic layer of an electrochromic device is formed from the electrochromic composition of the present invention. According to some embodiments of the present invention, the formation of the electrochromic composition and the electrochromic layer comprises the following steps: First, all components of the electrochromic composition, except for the polymer thickener, are mixed under shear force (using an impeller, etc.) until a homogeneous mixture is formed. Second, the polymer thickener is added and the mixture is homogenized to form a thick slurry. A liquid film of the thick slurry is formed on a sacrificial liner or temporary liner (composed of polyethylene terephthalate in some embodiments) using, for example, a doctor blade or a drawdown bar. The liquid film on the sacrificial liner / temporary liner is exposed to high temperatures, for example, 60°C to 90°C for 3 to 10 minutes, thereby forming a solidified film / layer which is the electrochromic layer. The solidified film / electrochromic layer is separated from the sacrificial liner / temporary liner (which is discarded), cut to a predetermined size (if necessary), and placed over or onto the first transparent electrode layer of the first substrate. The second transparent electrode of the second substrate is placed over or onto the other (or opposing / exposed) surface of the electrochromic layer to form a stack comprising the first substrate, the first transparent electrode, the electrochromic layer, the second transparent electrode, and the second substrate. The stack may further include electrical connectors that electrically contact the first and second transparent electrodes separately. The stack (having at least an optional gasket surrounding the outer edge of the electrochromic layer) is subjected to vacuum lamination while simultaneously applying a high temperature (e.g., 110°C to 200°C) for a set period of time (e.g., 10 to 30 minutes). After cooling, the thus formed electrochromic device is removed from the vacuum lamination device.
[0105] The present invention can be further characterized by one or more of the following non-limiting clauses:
[0106] Clause 1: Electrochromic device, (a) A first substrate having a surface including a first transparent electrode layer, (b) A second substrate having a surface including a second transparent conductive electrode layer, (c) An electrochromic layer interposed between the first transparent conductive electrode layer and the second transparent conductive electrode layer, comprising, the first transparent electrode layer and the second transparent electrode layer face each other with a facing interval, the electrochromic layer, (i) a cathode component, (ii) an anode component, (iii) an electrolyte, (iv) a polymer matrix, comprising, the anode component is represented by the following formula (I):
Chemical formula
[0107] Clause 2: The electrochromic device according to Clause 1, wherein R<{0000095}>and R<{0000096}>are each independently linear or branched C3-C<{0000097}>alkyl.
[0108] Clause 3: The electrochromic device according to Clause 1 or 2, wherein R<{0000098}>and R<{0000099}>are each independently linear or branched C4-C8 alkyl.
[0109] Clause 4: The cathode component is represented by the following formula (II):
Chemical formula
[0110] Clause 5:R 3 and R 4 The electrochromic device according to Clause 4, wherein each is independently selected from linear or branched C1-C4 alkyl groups, unsubstituted phenyl groups, and substituted phenyl groups.
[0111] Clause 6:R 3 However, it is selected from linear or branched C1-C4 alkyl groups, R 4 The electrochromic device according to Clause 4 or 5, selected from unsubstituted phenyl and substituted phenyl.
[0112] Clause 7: The cathode component further comprises a counteranion, and each counteranion of the cathode component is BF4 - PF6 - ClO4 - CF3SO3 - Or (CF3SO2)2N - and (CF3SO2)3C - An electrochromic device as described in any one of clauses 1, 2, 3, 4, 5, or 6, independently selected from the group consisting of the following:
[0113] Clause 8: The electrolyte is, At least one electrolyte anion, each electrolyte anion independently selected from bis(perfluoro(linear or branched C1-C6 alkylsulfonyl)imides), An electrolyte cation comprising at least one electrolyte cation, each of which is independently selected from 1-(linear or branched C1-C6 alkyl)-3-(linear or branched C1-C6 alkyl)imidazolium or 1-(linear or branched C1-C6 alkyl)-1-(linear or branched C1-C6 alkyl)piperidinium, An electrochromic device as described in any one of clauses 1, 2, 3, 4, 5, 6, or 7, including the following:
[0114] Clause 9: The electrochromic device according to any one of Clauses 1, 2, 3, 4, 5, 6, 7, or 8, wherein the polymer matrix comprises a polymer, the polymer comprising at least one of poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C1-C6 alkylene)), or poly((linear or branched C1-C8 alkyl)(meth)acrylate).
[0115] Clause 10: An electrochromic device as described in any one of Clauses 1, 2, 3, 4, 5, 6, 7, 8, or 9, The cathode component is present in an amount of 0.8% to 6.25% by weight. The aforementioned anode component is present in an amount of 0.8% to 6.25% by weight. The aforementioned electrolyte is present in an amount of 16.4% to 25.0% by weight. The polymer matrix is present in an amount of 62.5% to 82.0% by weight. The weight percentage in each case is based on the total weight of the cathode component, the anode component, the electrolyte, and the polymer matrix of the electrochromic device.
[0116] Clause 11: An electrochromic composition, (i) Cathode component and, (ii) Anode component and, (iii) Electrolytes and, (iv) Polymeric thickeners and (v) Solvent and, Includes, The anode component is given by the following equation (I): [ka] (In the formula, R 1 and R 2 Each of these is independently linear or branched C3-C 20 The compound comprises an anodic coloring electrochromic compound represented by (selected from alkyl groups), Electrochromic composition.
[0117] Clause 12:R 1 and R 2 However, each is independent of C3~C 10 An electrochromic composition as described in Clause 11, which is alkyl.
[0118] Clause 13:R 1 and R 2 The electrochromic composition according to clause 11 or 12, wherein each is independently a linear or branched C4-C8 alkyl group.
[0119] Clause 14: The cathode component is defined by the following formula (II): [ka] (In the formula, R 3 and R 4 Each of these is independently linear or branched C1-C 10 An electrochromic composition according to any one of claims 11, 12, or 13, comprising a 1,1'-disubstituted-4,4'-dipyridinium cation (selected from alkyl, unsubstituted aryl, and substituted aryl).
[0120] Clause 15:R 3 and R 4 The electrochromic composition according to Clause 13, wherein each is independently selected from linear or branched C1-C4 alkyl groups, unsubstituted phenyl groups, and substituted phenyl groups.
[0121] Clause 16:R 3 However, it is selected from linear or branched C1-C4 alkyl groups, R 4 The electrochromic composition according to Clause 14 or 15, selected from unsubstituted phenyl and substituted phenyl.
[0122] Clause 17: The cathode component further comprises a counteranion, and each counteranion of the cathode component is BF4 - PF6 - ClO4 - CF3SO3 - Or (CF3SO2)2N - and (CF3SO2)3C - An electrochromic composition according to any one of the following clauses, selected from the group consisting of:
[0123] Clause 18: The electrolyte is, At least one electrolyte anion, each electrolyte anion independently selected from bis(perfluoro(linear or branched C1-C6 alkylsulfonyl)imides), An electrolyte cation comprising at least one electrolyte cation, each of which is independently selected from 1-(linear or branched C1-C6 alkyl)-3-(linear or branched C1-C6 alkyl)imidazolium or 1-(linear or branched C1-C6 alkyl)-1-(linear or branched C1-C6 alkyl)piperidinium, An electrochromic composition according to any one of clauses 11, 12, 13, 14, 15, 16, or 17, including the following:
[0124] Clause 19: The electrochromic composition according to any one of Clauses 11, 12, 13, 14, 15, 16, 17, or 18, wherein the polymer thickener comprises a polymer, the polymer comprising at least one of poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C1-C6 alkylene)), or poly((linear or branched C1-C8 alkyl)(meth)acrylate).
[0125] Clause 20: The electrochromic composition according to any one of Clauses 11, 12, 13, 14, 15, 16, 17, 18, or 19, wherein the solvent comprises at least one of ethylene carbonate, propylene carbonate, gamma-butyrolactone, gamma-valerolactone, N-methylpyrrolidone, polyethylene glycol, or a carboxylic acid ester of polyethylene glycol.
[0126] Clause 21: An electrochromic composition as described in any one of Clauses 11, 12, 13, 14, 15, 16, 17, 18, 19, or 20, The cathode component is present in an amount of 0.2% to 3.6% by weight. The aforementioned anode component is present in an amount of 0.2% to 3.6% by weight. The aforementioned electrolyte is present in an amount of 3.8% to 14.3% by weight. The aforementioned polymeric thickener is present in an amount of 19.2% to 35.7% by weight. The aforementioned solvent is present in an amount of 42.8% to 76.6% by weight. The weight percentage in each case is based on the total weight of the cathode component, the anode component, the electrolyte, the polymer thickener, and the solvent in the electrochromic composition.
[0127] Clause 22: Formula (I): [ka] (In the formula, R 1 and R 2Each of these is independently linear or branched C3-C 20 An anodic colored electrochromic compound represented by (selected from alkyl groups).
[0128] Clause 23:R 1 and R 2 However, each is independent, forming linear or branched C3-C3 chains. 10 An alkyl anodized electrochromic compound as described in Clause 21.
[0129] Clause 24:R 1 and R 2 The anodic colored electrochromic compound according to clause 22 or 23, wherein each is independently a linear or branched C4-C8 alkyl group.
[0130] The present invention has been described with reference to specific details of its particular embodiments. Except for the scope contained in the appended claims, such details are not intended to be considered to limit the scope of the invention.
Claims
1. Electrochromic devices, (a) A first substrate having a surface including a first transparent electrode layer, (b) A second substrate having a surface including a second transparent electrode layer, (c) an electrochromic layer interposed between the first transparent electrode layer and the second transparent electrode layer, Includes, The first transparent electrode layer and the second transparent electrode layer are facing each other with a gap between them. The electrochromic layer is (i) Cathode component and, (ii) Anode component and (iii) Electrolytes and, (iv) Polymer matrix and Includes, The anode component is given by the following formula (I): 【Chemistry 1】 (In the formula, R 1 and R 2 Each of these is independently linear or branched C 3 ~C 20 The compound comprises an anodic coloring electrochromic compound represented by (selected from alkyl groups), Electrochromic devices.
2. R 1 and R 2 However, each is independent, and is linear or branched C 3 ~C 10 The electrochromic device according to claim 1, wherein the device is alkyl.
3. R 1 and R 2 are each independently a linear or branched C 4 -C 8 alkyl, the electrochromic device according to claim 2.
4. The cathode component is given by the following formula (II): 【Chemistry 2】 (In the formula, R 3 and R 4 Each of these is independently linear or branched C 1 ~C 10 The electrochromic device according to claim 1, comprising a 1,1'-disubstituted-4,4'-dipyridinium cation (selected from alkyl, unsubstituted aryl, and substituted aryl).
5. R 3 and R 4 However, each is independent, and is linear or branched C 1 ~C 4 The electrochromic device according to claim 4, selected from alkyl, unsubstituted phenyl, and substituted phenyl.
6. The cathode component further comprises a counteranion, and each counteranion of the cathode component is BF 4 - , PF 6 - , ClO 4 - CF 3 SO 3 - or (CF 3 SO 2 ) 2 N - and (CF 3 SO 2 ) 3 C - An electrochromic device according to claim 4, independently selected from the group consisting of the following.
7. The aforementioned electrolyte, At least one electrolyte anion, each electrolyte anion being bis(perfluoro(linear or branched C) 1 ~C 6 An electrolyte anion independently selected from alkylsulfonyl (imide) and At least one electrolyte cation, each electrolyte cation is 1-(linear or branched C 1 ~C 6 Alkyl)-3-(linear or branched C 1 ~C 6 Alkyl)imidazolium, or 1-(linear or branched C 1 ~C 6 Alkyl)-1-(linear or branched C 1 ~C 6 An electrolyte cation independently selected from alkyl)piperidinium, The electrochromic device according to claim 1, including the following:
8. The polymer matrix comprises a polymer, the polymer being poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C)). 1 ~C 6 Alkylene), or poly((linear or branched C) 1 ~C 8 The electrochromic device according to claim 1, comprising at least one of alkyl (meth)acrylate.
9. The cathode component is present in an amount of 0.8% to 6.25% by weight. The aforementioned anode component is present in an amount of 0.8% to 6.25% by weight. The electrolyte is present in an amount of 16.4% to 25.0% by weight. The polymer matrix is present in an amount of 62.5% to 82.0% by weight. The weight percentage in each case is based on the total weight of the cathode component, the anode component, the electrolyte, and the polymer matrix. The electrochromic device according to claim 1.
10. An electrochromic composition, (i) Cathode component and, (ii) Anode component and (iii) Electrolytes and, (iv) Polymer thickeners and (v) Solvent and Includes, The anode component is given by the following formula (I): 【Transformation 3】 (In the formula, R 1 and R 2 Each of these is independently linear or branched C 3 ~C 20 The compound comprises an anodic coloring electrochromic compound represented by (selected from alkyl groups), Electrochromic composition.
11. R 1 and R 2 However, each is independent of C 3 ~C 10 The electrochromic composition according to claim 10, wherein the component is alkyl.
12. R 1 and R 2 However, each is independent, and is linear or branched C 4 ~C 8 The electrochromic composition according to claim 11, wherein the component is alkyl.
13. The cathode component is given by the following formula (II): 【Chemistry 4】 (In the formula, R 3 and R 4 Each of these is independently linear or branched C 1 ~C 10 The electrochromic composition according to claim 10, comprising a 1,1'-disubstituted-4,4'-dipyridinium cation (selected from alkyl, unsubstituted aryl, and substituted aryl).
14. R 3 and R 4 However, each is independent, and is linear or branched C 1 ~C 4 The electrochromic composition according to claim 13, selected from alkyl, unsubstituted phenyl, and substituted phenyl.
15. The cathode component further comprises a counteranion, and each counteranion of the cathode component is BF 4 - , PF 6 - , ClO 4 - CF 3 SO 3 - or (CF 3 SO 2 ) 2 N - and (CF 3 SO 2 ) 3 C - An electrochromic composition according to claim 13, selected from the group consisting of the following.
16. The aforementioned electrolyte, At least one electrolyte anion, each electrolyte anion being independently selected from bis(perfluoro(linear or branched C 1 ~C 6 alkylsulfonyl)imide), the electrolyte anion, and At least one electrolyte cation, each electrolyte cation being 1-(linear or branched C 1 ~C 6 alkyl)-3-(linear or branched C 1 ~C 6 alkyl)imidazolium, or 1-(linear or branched C 1 ~C 6 alkyl)-1-(linear or branched C 1 ~C 6 alkyl)piperidinium, independently selected from, electrolyte cations, and The electrochromic composition according to claim 10, comprising:
17. The polymer thickener comprises a polymer, the polymer being poly((meth)acrylonitrile), poly(vinylidene fluoride), poly(vinylidene fluoride-coperfluoro(linear or branched C)). 1 ~C 6 Alkylene), or poly((linear or branched C) 1 ~C 8 The electrochromic composition according to claim 10, comprising at least one of alkyl (meth)acrylate.
18. The electrochromic composition according to claim 10, wherein the solvent comprises at least one of ethylene carbonate, propylene carbonate, gamma-butyrolactone, gamma-valerolactone, N-methylpyrrolidone, polyethylene glycol, or a carboxylic acid ester of polyethylene glycol.
19. The cathode component is present in an amount of 0.2% to 3.6% by weight. The aforementioned anode component is present in an amount of 0.2% to 3.6% by weight. The electrolyte is present in an amount of 3.8% to 14.3% by weight. The aforementioned polymeric thickener is present in an amount of 19.2% to 35.7% by weight. The solvent is present in an amount of 42.8% to 76.6% by weight. The weight percentage in each case is based on the total weight of the cathode component, the anode component, the electrolyte, the polymer thickener, and the solvent. The electrochromic composition according to claim 10.
Citation Information
Patent Citations
Screening processes, conducting polymers, and electrochromic devices based on diffusional gradients
US20140024792A1
Electrochromic devices, methods of manufacturing and operation thereof
WO2021075999A1