Resonant-Cavity-Enhanced Electrochromic Materials and Devices

被引:43
作者
Chen, Jian [1 ,2 ]
Song, Ge [2 ]
Cong, Shan [1 ,2 ]
Zhao, Zhigang [1 ,2 ]
机构
[1] Univ Sci & Technol China, Sch Nanotech & Nanobion, Hefei 230026, Peoples R China
[2] Chinese Acad Sci, Suzhou Inst Nanotech & Nanobion, Key Lab Nanodevices & Applicat, Suzhou 215123, Peoples R China
基金
中国国家自然科学基金;
关键词
electrochromic materials and devices; excellent cycling lifetimes; fast response times; light-matter interactions; multicolor properties; optical resonators; OPTICAL-PROPERTIES; THIN-FILMS; PLASMONIC METASURFACES; CONDUCTIVE POLYMER; STRUCTURAL COLORS; FANO RESONANCES; IRIDIUM OXIDE; SOLAR-CELLS; LARGE-AREA; LIGHT;
D O I
10.1002/adma.202300179
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
With rapid advances in optoelectronics, electrochromic materials and devices have received tremendous attentions from both industry and academia for their strong potentials in wearable and portable electronics, displays/billboards, adaptive camouflage, tunable optics, and intelligent devices, etc. However, conventional electrochromic materials and devices typically present some serious limitations such as undesirable dull colors, and long switching time, hindering their deeper development. Optical resonators have been proven to be the most powerful platform for providing strong optical confinement and controllable lightmatter interactions. They generate locally enhanced electromagnetic near-fields that can convert small refractive index changes in electrochromic materials into high-contrast color variations, enabling multicolor or even panchromatic tuning of electrochromic materials. Here, resonant-cavity-enhanced electrochromic materials and devices, an advanced and emerging trend in electrochromics, are reviewed. In this review, w e will focus on the progress in multicolor electrochromic materials and devices based on different types of optical resonators and their advanced and emerging applications, including multichromatic displays, adaptive visible camouflage, visualized energy storage, and applications of multispectral tunability. Among these topics, principles of optical resonators, related materials/devices and multicolor electrochromic properties are comprehensively discussed and summarized. Finally, the challenges and prospects for resonant-cavity-enhanced electrochromic materials and devices are presented. Resonant-cavity-enhanced electrochromic materials and devices demonstrate significant potential to enable multicolor characteristics, fast response times, and long cycling lifetimes. This review focuses on the up-to-date achievements and some issues remaining for the future development of emerging electrochromic materials and devices based on different types of optical resonators, as well as the potential extended applications of these materials and devices.image
引用
收藏
页数:40
相关论文
共 296 条
[1]   Tunable Fano-Resonant Metasurfaces on a Disposable Plastic-Template for Multimodal and Multiplex Biosensing [J].
Ahmed, Rajib ;
Ozen, Mehmet Ozgun ;
Karaaslan, Merve Goksin ;
Prator, Cecilia A. ;
Thanh, Cassandra ;
Kumar, Shreya ;
Torres, Leonel ;
Iyer, Nikita ;
Munter, Sadie ;
Southern, Sarka ;
Henrich, Timothy J. ;
Inci, Fatih ;
Demirci, Utkan .
ADVANCED MATERIALS, 2020, 32 (19)
[2]   High quality electrochromic polythiophenes via BF3•Et2O electropolymerization [J].
Alkan, S ;
Cutler, CA ;
Reynolds, JR .
ADVANCED FUNCTIONAL MATERIALS, 2003, 13 (04) :331-336
[3]   A Wearable Second Skin-Like Multifunctional Supercapacitor with Vertical Gold Nanowires and Electrochromic Polyaniline [J].
An, Tiance ;
Ling, Yunzhi ;
Gong, Shu ;
Zhu, Bowen ;
Zhao, Yunmeng ;
Dong, Dashen ;
Yap, Lim Wei ;
Wang, Yan ;
Cheng, Wenlong .
ADVANCED MATERIALS TECHNOLOGIES, 2019, 4 (03)
[4]   Two-Dimensional WO3 Nanosheets Chemically Converted from Layered WS2 for High-Performance Electrochromic Devices [J].
Azam, Ashraful ;
Kim, Jungmo ;
Park, Junyong ;
Novak, Travis G. ;
Tiwari, Anand P. ;
Song, Sung Ho ;
Kim, Bumsoo ;
Jeon, Seokwoo .
NANO LETTERS, 2018, 18 (09) :5646-5651
[5]   Optical properties of electrochromic iridium oxide and iridium-tantalum oxide thin films in different colouration states [J].
Backholm, Jonas ;
Niklasson, Gunnar A. .
SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2008, 92 (11) :1388-1392
[6]   Liquid crystal-powered Mie resonators for electrically tunable photorealistic color gradients and dark blacks [J].
Badloe, Trevon ;
Kim, Joohoon ;
Kim, Inki ;
Kim, Won-Sik ;
Kim, Wook Sung ;
Kim, Young-Ki ;
Rho, Junsuk .
LIGHT-SCIENCE & APPLICATIONS, 2022, 11 (01)
[7]   Mie Resonant Structural Colors [J].
Baek, Kyungnae ;
Kim, Youngji ;
Mohd-Noor, Syazwani ;
Hyun, Jerome K. .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (05) :5300-5318
[8]   Digital Electrochemistry for On-Chip Heterogeneous Material Integration [J].
Bao, Bin ;
Rivkin, Boris ;
Akbar, Farzin ;
Karnaushenko, Dmitriy D. ;
Bandari, Vineeth Kumar ;
Teuerle, Laura ;
Becker, Christian ;
Baunack, Stefan ;
Karnaushenko, Daniil ;
Schmidt, Oliver G. .
ADVANCED MATERIALS, 2021, 33 (26)
[9]   Bioinspired Controllable Electro-Chemomechanical Coloration Films [J].
Bao, Yinhuo ;
Han, Yu ;
Yang, Le ;
Li, Na ;
Luo, Jingdong ;
Qu, Wenjie ;
Chen, Renjie ;
Jen, Alex K-Y ;
Li, Teng ;
Chen, Haosen ;
Song, Wei-Li ;
Fang, Daining .
ADVANCED FUNCTIONAL MATERIALS, 2019, 29 (02)
[10]   Surface plasmon polaritons and their role in the enhanced transmission of light through periodic arrays of subwavelength holes in a metal film [J].
Barnes, WL ;
Murray, WA ;
Dintinger, J ;
Devaux, E ;
Ebbesen, TW .
PHYSICAL REVIEW LETTERS, 2004, 92 (10) :107401-1