Abstract
In traditional metal/ferroelectric film/metal structure, it is widely accepted that the photocurrent is originated from two factors: one is the remnant polarization, which produces a depolarization electric field extending over the whole film volume; the other is the top or bottom film/metal interface Schottky barrier. However, the high reflection of opaque or translucent metal electrodes, as well as almost symmetric Schottky barriers in the top and bottom metal/film interfaces result in a low photovoltaic output. In this paper, a transparent indium tin oxide (ITO) electrode was introduced in ITO/Pb(Zr 0.2Ti 0.8)O 3(PZT)/Pt structure, in order to not only make more incident light absorbed by PZT film but also artificially enlarge the Schottky barrier difference between bottom ITO/PZT interface and top PZT/Pt one. The results show that the photocurrent of ITO/PZT/Pt structure is enhanced one order than that of Pt/PZT/Pt structure under the same irradiation of a simulative sunlight (AM 1.5G). The systematic studies present in this paper gave some principles to design ferroelectric film devices in considering higher optical-to-electronic conversion efficiency. © 2012 Elsevier B.V. All rights reserved.
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Zhang, P., Cao, D., Wang, C., Shen, M., Su, X., Fang, L., … Zheng, F. (2012). Enhanced photocurrent in Pb(Zr 0.2Ti 0.8)O 3 ferroelectric film by artificially introducing asymmetrical interface Schottky barriers. Materials Chemistry and Physics, 135(2–3), 304–308. https://doi.org/10.1016/j.matchemphys.2012.04.041
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