Multicolored, Low-Power, Flexible Electrochromic Devices Based on Ion Gels

被引:214
|
作者
Moon, Hong Chul [1 ,3 ]
Kim, Chang-Hyun [1 ]
Lodge, Timothy P. [1 ,2 ]
Frisbie, C. Daniel [1 ]
机构
[1] Univ Minnesota, Dept Chem Engn & Mat Sci, 421 Washington Ave SE, Minneapolis, MN 55455 USA
[2] Univ Minnesota, Dept Chem, 207 Pleasant St SE, Minneapolis, MN 55455 USA
[3] Univ Seoul, Dept Chem Engn, Seoul 02504, South Korea
关键词
electrochromism; flexible electronics; electrochemical displays; ion gels; copolymers; POLYMER ELECTROLYTES; CYANOPHENYL PARAQUAT; HEPTYL VIOLOGEN; RADICAL-CATION; TRANSISTORS; PERFORMANCE; DISPLAYS; DIMERIZATION;
D O I
10.1021/acsami.6b01307
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Ion gels composed of a copolymer and a room temperature ionic liquid are versatile solid-state electrolytes with excellent features including high ionic conductivity, nonvolatility, easily tunable mechanical properties, good flexibility and solution processability. Ion gels can be functionalized by incorporating redox-active species such as electrochemiluminescent (ECL) luminophores or electrochromic (EC) dyes. Here, we enhance the functionality of EC gels for realizing multicolored EC devices (ECDs), either by controlling the chemical equilibrium between a monomer and dimer of a colored EC species, or by modifying the molecular structures of the EC species. All devices in this work are conveniently fabricated by a "cut-and-stick" strategy, and require very low power for maintaining the colored state [i.e., 90 mu W/cm(2) (113 mu A/cm(2) at -0.8 V) for blue, 4,mu W/cm(2) (10 mu A/cm(2) at -0.4 V) for green, and 32 mu W/cm(2) (79 mu A/cm(2) at -0.4 V) for red ECD]. We also successfully demonstrate a patterned, multicolored, flexible ECD on plastic. Overall, these results suggest that gel-based ECDs have significant potential as low power displays in printed electronics powered by thin-film batteries.
引用
收藏
页码:6252 / 6260
页数:9
相关论文
共 50 条
  • [41] Extremely Low-power Edge Connected Devices
    Brennan, Robert L.
    Lee, Taylor
    2024 IEEE 67TH INTERNATIONAL MIDWEST SYMPOSIUM ON CIRCUITS AND SYSTEMS, MWSCAS 2024, 2024, : 674 - 677
  • [42] THERMOSTAT FOR LOW-POWER SEMICONDUCTOR-DEVICES
    KLUIKOV, AG
    LEBEDEV, VM
    SOVIET JOURNAL OF OPTICAL TECHNOLOGY, 1978, 45 (10): : 634 - 635
  • [43] THERMOSTAT FOR LOW-POWER SEMICONDUCTOR DEVICES.
    Kluikov, A.G.
    Lebedev, V.M.
    1978, 45 (10): : 634 - 635
  • [44] Mutual authentication for low-power mobile devices
    Jakobsson, M
    Pointcheval, D
    FINANCIAL CRYTOGRAPHY, PROCEEDINGS, 2002, 2339 : 178 - 195
  • [45] LOW-POWER BEYOND-CMOS DEVICES
    Chen, An
    2014 12TH IEEE INTERNATIONAL CONFERENCE ON SOLID-STATE AND INTEGRATED CIRCUIT TECHNOLOGY (ICSICT), 2014,
  • [46] Discrete Gaussian Sampling for Low-Power Devices
    More, Shruti
    Katti, Raj
    2015 IEEE PACIFIC RIM CONFERENCE ON COMMUNICATIONS, COMPUTERS AND SIGNAL PROCESSING (PACRIM), 2015, : 181 - 186
  • [47] Turbo codes for low-power mobile devices
    Hebbes, L
    Malyan, RR
    IEEE REGION 8 EUROCON 2003, VOL A, PROCEEDINGS: COMPUTER AS A TOOL, 2003, : 281 - 284
  • [48] Fabrication of Flexible Electrochromic Devices Based on Tungsten Trioxide Nanobundles
    Chen, Chih Hao
    Tseng, Tseung-Yuen
    Hung, Chung Jung
    2016 2ND INTERNATIONAL CONFERENCE ON INTELLIGENT GREEN BUILDING AND SMART GRID (IGBSG), 2016, : 65 - 70
  • [49] Viologen Based All-in-one Flexible Electrochromic Devices
    Park, Bo-Seong
    Kim, Hyun-Jeong
    Shin, Hyeonho
    Park, Seongmin
    Lee, Jaeun
    Jeon, Sunggun
    Nah, Yoon-Chae
    KOREAN JOURNAL OF MATERIALS RESEARCH, 2021, 31 (03): : 132 - 138
  • [50] ELECTROCHROMIC DISPLAY RIVALS LIQUID-CRYSTAL FOR LOW-POWER NEEDS
    COHEN, C
    ELECTRONICS, 1981, 54 (16): : 65 - 66