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用于可调谐能带弯曲的多晶BiFeO光电极中的极化取向

Polarization Alignment in Polycrystalline BiFeO Photoelectrodes for Tunable Band Bending.

作者信息

Li Xianlong, Wang Zhiliang, Ji Wenzhong, Lu Teng, You Jiakang, Wang Kai, Liu Gang, Liu Yun, Wang Lianzhou

机构信息

Nanomaterials Centre, School of Chemical Engineering, Australian Institute for Bioengineering and Nanotechnology, The University of Queensland, St Lucia, Queensland 4072, Australia.

Research School of Chemistry, The Australian National University, Canberra, ACT 2601, Australia.

出版信息

ACS Nano. 2023 Nov 28;17(22):22944-22951. doi: 10.1021/acsnano.3c08081. Epub 2023 Nov 10.

Abstract

Polarization in a semiconductor can modulate the band bending via the depolarization electric field (), subsequently tuning the charge separation and transfer (CST) process in photoelectrodes. However, the random orientation of dipole moments in many polycrystalline semiconductor photoelectrodes leads to negligible polarization effect. How to effectively align the dipole moments in polycrystalline photoelectrodes into the same direction to maximize the polarization is still to be developed. Herein, we report that the dipole moments in a ferroelectric BiFeO photoelectrode can be controlled under external poling, resulting in a tunable CST efficiency. A negative bias of -40 voltage (V) poling to the photoelectrode leads to an over 110% increase of the CST efficiency, while poling at +40 V, the CST efficiency is reduced to only 41% of the original value. Furthermore, a nearly linear relationship between the external poling voltage and surface potential is discovered. The findings here provide an effective method in tuning the band bending and charge transfer of the emerging ferroelectricity driven solar energy conversion.

摘要

半导体中的极化可通过去极化电场调制能带弯曲,进而调节光电极中的电荷分离与转移(CST)过程。然而,许多多晶半导体光电极中偶极矩的随机取向导致极化效应可忽略不计。如何有效使多晶光电极中的偶极矩沿同一方向排列以最大化极化仍有待探索。在此,我们报道铁电BiFeO光电极中的偶极矩可在外加极化下得到控制,从而实现可调的CST效率。对光电极施加-40伏(V)的负偏压极化会使CST效率提高超过110%,而在+40 V极化时,CST效率降至仅为原始值的41%。此外,还发现外加极化电压与表面电位之间存在近似线性关系。此处的研究结果为调节新兴铁电驱动太阳能转换中的能带弯曲和电荷转移提供了一种有效方法。

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