Materials Science and Engineering, University of Wisconsin-Madison , Madison, Wisconsin 53706, United States.
Department of Electronic Information Materials, School of Materials Science and Engineering, Shanghai University , Shanghai, 200444, China.
Nano Lett. 2015 Nov 11;15(11):7574-80. doi: 10.1021/acs.nanolett.5b03988. Epub 2015 Oct 23.
The performances of heterojunction-based electronic devices are extremely sensitive to the interfacial electronic band structure. Here we report a largely enhanced performance of photoelectrochemical (PEC) photoanodes by ferroelectric polarization-endowed band engineering on the basis of TiO2/BaTiO3 core/shell nanowires (NWs). Through a one-step hydrothermal process, a uniform, epitaxial, and spontaneously poled barium titanate (BTO) layer was created on single crystalline TiO2 NWs. Compared to pristine TiO2 NWs, the 5 nm BTO-coated TiO2 NWs achieved 67% photocurrent density enhancement. By numerically calculating the potential distribution across the TiO2/BTO/electrolyte heterojunction and systematically investigating the light absorption, charge injection and separation properties of TiO2 and TiO2/BTO NWs, the PEC performance gain was proved to be a result of the increased charge separation efficiency induced by the ferroelectric polarization of the BTO shell. The ferroelectric polarization could be switched by external electric field poling and yielded PEC performance gain or loss based on the direction of the polarization. This study evidence that the piezotronic effect (ferroelectric or piezoelectric potential-induced band structure engineering) holds great promises in improving the performance of PEC photoelectrodes in addition to chemistry and structure optimization.
基于异质结的电子器件的性能对界面电子能带结构极其敏感。在这里,我们基于 TiO2/BaTiO3 核/壳纳米线 (NWs) 通过铁电极化赋予的能带工程,报道了光电化学 (PEC) 光阳极性能的大幅提高。通过一步水热工艺,在单晶 TiO2 NWs 上形成了均匀、外延和自发极化的钛酸钡 (BTO) 层。与原始的 TiO2 NWs 相比,5nm BTO 涂层的 TiO2 NWs 的光电流密度提高了 67%。通过数值计算 TiO2/BTO/电解质异质结的电势分布,并系统研究 TiO2 和 TiO2/BTO NWs 的光吸收、电荷注入和分离特性,证明了 PEC 性能的提高是由于 BTO 壳的铁电极化引起的电荷分离效率的提高。铁电极化可以通过外部电场极化来切换,并根据极化的方向产生 PEC 性能的增益或损失。这项研究证明,除了化学和结构优化之外,压电器效应(铁电或压电电势诱导能带结构工程)在提高 PEC 光电阳极的性能方面具有很大的潜力。