材料科学
电极
光电子学
氧化铟锡
有机太阳能电池
薄板电阻
透射率
纳米技术
能量转换效率
复合材料
薄膜
聚合物
图层(电子)
化学
物理化学
作者
Zhi Jiang,Kenjiro Fukuda,Xiaomin Xu,Sungjun Park,Daishi Inoue,Hanbit Jin,Masahiko Saito,Itaru Osaka,Kazuo Takimiya,Takao Someya
标识
DOI:10.1002/adma.201707526
摘要
Abstract Mechanically durable transparent electrodes are needed in flexible optoelectronic devices to realize their long‐term stable functioning, for applications in various fields such as energy, healthcare, and soft robotics. Several promising transparent electrodes based on nanomaterials have been previously reported to replace the conventional and fragile indium‐tin oxide (ITO); however, obtaining feasible printed transparent electrodes for ultraflexible devices with a multistack structure is still a great challenge. Here, a printed ultrathin (uniform thickness of 100 nm) Ag mesh transparent electrode is demonstrated, simultaneously achieving high conductance, high transparency, and good mechanical properties. It shows a 17 Ω sq −1 sheet resistance ( R sh ) with 93.2% transmittance, which surpasses the performance of sputtered ITO electrodes and other ultrathin Ag mesh transparent electrodes. The conductance is stable after 500 cycles of 100% stretch/release deformation, with an insignificant increase (10.6%) in R sh by adopting a buckling structure. Furthermore, organic photovoltaics (OPVs) using our Ag mesh transparent electrodes achieve a power conversion efficiency of 8.3%, which is comparable to the performance of ITO‐based OPVs.
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