材料科学
光电流
氧气
析氧
催化作用
分解水
表面光电压
表面状态
化学工程
纳米技术
电化学
光电子学
曲面(拓扑)
光催化
物理化学
电极
工程类
物理
量子力学
有机化学
化学
生物化学
数学
光谱学
几何学
作者
Junyi Cui,Mátyás Dabóczi,Miriam Regue,Yi‐Chun Chin,Katia Pagano,Jifang Zhang,Mark A. Isaacs,Gwilherm Kerherve,Aris Mornto,James West,Sixto Giménez,Jinhyun Kim,Salvador Eslava
标识
DOI:10.1002/adfm.202207136
摘要
Abstract BiVO 4 has attracted wide attention for oxygen‐evolution photoanodes in water‐splitting photoelectrochemical devices. However, its performance is hampered by electron‐hole recombination at surface states. Herein, partially oxidized two‐dimensional (2D) bismuthene is developed as an effective, stable, functional interlayer between BiVO 4 and the archetypal NiFeOOH co‐catalyst. Comprehensive (photo)electrochemical and surface photovoltage characterizations show that NiFeOOH can effectively increase the lifetime of photogenerated holes by passivating hole trap states of BiVO 4 ; however, it is limited in influencing electron trap states related to oxygen vacancies ( V O ). Loading bismuthene on BiVO 4 photoanodes increases the density of V O that are beneficial for the oxygen evolution reaction via the formation of oxy/hydroxyl‐based water oxidation intermediates at the surface. Moreover, bismuthene increases interfacial band bending and fills the V O ‐related electron traps, leading to more efficient charge extraction. With the synergistic interaction of bismuthene and NiFeOOH on BiVO 4 , this composite photoanode achieves a 5.8‐fold increase in photocurrent compared to bare BiVO 4 reaching a stable 3.4 (±0.2) mA cm –2 at a low bias of +0.8 V RHE or 4.7(±0.2) mA cm –2 at +1.23 V RHE . The use of 2D bismuthene as functional interlayer provides a new strategy to enhance the performance of photoanodes.
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