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锆钛酸铅薄膜非人工表面上表面等离子体辅助可见光吸收导致的光伏增强。

Photovoltaic enhancement due to surface-plasmon assisted visible-light absorption at the inartificial surface of lead zirconate-titanate film.

作者信息

Zheng Fengang, Zhang Peng, Wang Xiaofeng, Huang Wen, Zhang Jinxing, Shen Mingrong, Dong Wen, Fang Liang, Bai Yongbin, Shen Xiaoqing, Sun Hua, Hao Jianhua

机构信息

Department of Physics and Jiangsu Key Laboratory of Thin Films, Soochow University, Suzhou 215006, China.

出版信息

Nanoscale. 2014 Mar 7;6(5):2915-21. doi: 10.1039/c3nr05757g. Epub 2014 Jan 30.

Abstract

PZT film of 300 nm thickness was deposited on tin indium oxide (ITO) coated quartz by a sol-gel method. Four metal electrodes, such as Pt, Au, Cu and Ag, were used as top electrodes deposited on the same PZT film by sputtering at room temperature. In ITO-PZT-Ag and ITO-PZT-Au structures, the visible light (400-700 nm) can be absorbed partially by a PZT film, and the maximum efficiency of photoelectric conversion of the ITO-PZT-Ag structure was enhanced to 0.42% (100 mW cm(-2), AM 1.5G), which is about 15 times higher than that of the ITO-PZT-Pt structure. Numerical simulations show that the natural random roughness of polycrystalline-PZT-metal interface can offer a possibility of coupling between the incident photons and SPs at the metal surface. The coincidence between the calculated SP properties and the measured EQE spectra reveals the SP origin of the photovoltaic enhancement in these ITO-PZT-metal structures, and the improved photocurrent output is caused by the enhanced optical absorption in the PZT region near the metal surface, rather than by the direct charge-transfer process between two materials.

摘要

通过溶胶-凝胶法在涂有氧化铟锡(ITO)的石英上沉积了厚度为300nm的锆钛酸铅(PZT)薄膜。使用铂、金、铜和银等四种金属电极作为顶电极,在室温下通过溅射沉积在同一PZT薄膜上。在ITO-PZT-Ag和ITO-PZT-Au结构中,可见光(400 - 700nm)可被PZT薄膜部分吸收,ITO-PZT-Ag结构的最大光电转换效率提高到了0.42%(100mW cm(-2),AM 1.5G),这比ITO-PZT-Pt结构高出约15倍。数值模拟表明,多晶PZT-金属界面的自然随机粗糙度能够为入射光子与金属表面表面等离激元(SPs)之间的耦合提供可能性。计算得到的SP特性与测量的外量子效率(EQE)光谱之间的一致性揭示了这些ITO-PZT-金属结构中光伏增强的SP起源,并且光电流输出的改善是由金属表面附近PZT区域中增强的光吸收引起的,而不是由两种材料之间的直接电荷转移过程导致的。

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