High-Performance Transparent Electrodes for Automobile Windshield Heaters Prepared by Combining Metal Grids and Oxide/Metal/Oxide Transparent Electrodes

被引:39
作者
Cheong, Woo-Seok [1 ]
Kim, Young-Hoi [1 ]
Lee, Joon-Min [1 ]
Hong, Chan-Hwa [1 ]
Choi, Ho-Yeol [1 ]
Kwak, Young-Jin [1 ]
Kim, Young Jun [1 ]
Kim, Young Shin [2 ]
机构
[1] ETRI, Daejeon 34129, South Korea
[2] DaeKi Hitech Co, Daejeon 34367, South Korea
关键词
automobile windshield; hybrid electrodes; metal grids; OMO; transparent heaters; NANOWIRE NETWORKS; CONDUCTING FILM; GENERATION;
D O I
10.1002/admt.201800550
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Transparent heaters can be fabricated with a wide variety of materials including indium-tin oxide, carbon nano tubes, graphenes, metal nanowires, metal grids, and hybrid-type electrodes. However these materials have been applied to small area heaters below 0.01 m(2) because of the limit of electrical and optical properties. High-performance transparent electrodes for large-area purpose (over 1.0 m(2)) have never been developed with any practical applicability in spite of their utility for removing fog or iced water on automobile windshield, which can be critical for safety and convenience of the drivers. Achieving ultralow resistance with high transparence is the major technical barrier in windshield heaters due to the intrinsic long distance between electrodes and low battery voltage in automobiles. In this study, a high performance transparent electrode, super hybrid electrode (SHE) is developed, which is manufactured by combining metal grids with oxide/metal/oxide electrode based on a newly developed electroplating method, which guarantees uniform properties over large area, over 1.0 m(2). Utilizing this newly devised electrode technology, an automobile windshield heater is successfully fabricated with sheet resistance of 0.1-0.3 Omega square(-1) and the transmittance of over 82% in large area samples of 1.01 m(2), which is good enough for automobile windshield application.
引用
收藏
页数:10
相关论文
共 46 条
[1]   Stretchable and Transparent Electrodes using Hybrid Structures of Graphene-Metal Nanotrough Networks with High Performances and Ultimate Uniformity [J].
An, Byeong Wan ;
Hyun, Byung Gwan ;
Kim, So-Yun ;
Kim, Minji ;
Lee, Mi-Sun ;
Lee, Kyongsoo ;
Koo, Jae Bon ;
Chu, Hye Yong ;
Bae, Byeong-Soo ;
Park, Jang-Ung .
NANO LETTERS, 2014, 14 (11) :6322-6328
[2]   Self-Junctioned Copper Nanofiber Transparent Flexible Conducting Film via Electrospinning and Electroplating [J].
An, Seongpil ;
Jo, Hong Seok ;
Kim, Do-Yeon ;
Lee, Hyun Jun ;
Ju, Byeong-Kwon ;
Al-Deyab, Salem S. ;
Ahn, Jong-Hyun ;
Qin, Yueling ;
Swihart, Mark T. ;
Yarin, Alexander L. ;
Yoon, Sam S. .
ADVANCED MATERIALS, 2016, 28 (33) :7149-+
[3]   Heat Dissipation of Transparent Graphene Defoggers [J].
Bae, Jung Jun ;
Lim, Seong Chu ;
Han, Gang Hee ;
Jo, Young Woo ;
Doung, Dinh Loc ;
Kim, Eun Sung ;
Chae, Seung Jin ;
Ta Quang Huy ;
Nguyen Van Luan ;
Lee, Young Hee .
ADVANCED FUNCTIONAL MATERIALS, 2012, 22 (22) :4819-4826
[4]  
Cullity B.D., 1978, ELEMENTS XRAY DIFFRA, V2nd, P102
[5]  
Ellmer K, 2012, NAT PHOTONICS, V6, P808, DOI [10.1038/nphoton.2012.282, 10.1038/NPHOTON.2012.282]
[6]  
Fleury G., 2011, US Patent, Patent No. [US 7972713, 7972713]
[8]   Visibly Transparent Heaters [J].
Gupta, Ritu ;
Rao, K. D. M. ;
Kiruthika, S. ;
Kulkarni, Giridhar U. .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (20) :12559-12575
[9]   Uniform Self-Forming Metallic Network as a High-Performance Transparent Conductive Electrode [J].
Han, Bing ;
Pei, Ke ;
Huang, Yuanlin ;
Zhang, Xiaojian ;
Rong, Qikun ;
Lin, Qinggeng ;
Guo, Yangfei ;
Sun, Tianyi ;
Guo, Chuanfei ;
Carnahan, David ;
Giersig, Michael ;
Wang, Yang ;
Gao, Jinwei ;
Ren, Zhifeng ;
Kempa, Krzysztof .
ADVANCED MATERIALS, 2014, 26 (06) :873-877
[10]  
HE X, 2017, MATERIALS, V10