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通过表面钝化和共催化剂沉积评估纳米结构LaFeO光阴极的光电化学活性增强效率

Evaluation of the Efficiency of Photoelectrochemical Activity Enhancement for the Nanostructured LaFeO Photocathode by Surface Passivation and Co-Catalyst Deposition.

作者信息

Chertkova Victoria P, Iskortseva Aleksandra N, Pazhetnov Egor M, Arkharova Natalia A, Ryazantsev Sergey V, Levin Eduard E, Nikitina Victoria A

机构信息

Department of Chemistry, Lomonosov Moscow State University, Moscow 119991, Russia.

Center for Energy Science and Technology, Skolkovo Institute of Science and Technology, Moscow 121205, Russia.

出版信息

Nanomaterials (Basel). 2022 Dec 5;12(23):4327. doi: 10.3390/nano12234327.

Abstract

Perovskite-type lanthanum iron oxide, LaFeO, is a promising photocathode material that can achieve water splitting under visible light. However, the performance of this photoelectrode material is limited by significant electron-hole recombination. In this work, we explore different strategies to optimize the activity of a nanostructured porous LaFeO film, which demonstrates enhanced photoelectrocatalytic activity due to the reduced diffusion length of the charge carriers. We found that surface passivation is not an efficient approach for enhancing the photoelectrochemical performance of LaFeO, as it is sufficiently stable under photoelectrocatalytic conditions. Instead, the deposition of a Pt co-catalyst was shown to be essential for maximizing the photoelectrochemical activity both in hydrogen evolution and oxygen reduction reactions. Illumination-induced band edge unpinning was found to be a major challenge for the further development of LaFeO photocathodes for water-splitting applications.

摘要

钙钛矿型氧化镧铁(LaFeO)是一种很有前景的光阴极材料,能够在可见光下实现水分解。然而,这种光电极材料的性能受到显著的电子 - 空穴复合的限制。在这项工作中,我们探索了不同的策略来优化纳米结构多孔LaFeO薄膜的活性,由于电荷载流子扩散长度的减小,该薄膜表现出增强的光电催化活性。我们发现表面钝化不是提高LaFeO光电化学性能的有效方法,因为它在光电催化条件下足够稳定。相反,事实表明,沉积铂助催化剂对于在析氢和氧还原反应中最大化光电化学活性至关重要。对于用于水分解应用的LaFeO光阴极的进一步发展,光照诱导的能带边缘脱钉被发现是一个主要挑战。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b6b9/9741200/e4cbf90c437e/nanomaterials-12-04327-g001.jpg

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