非阻塞I/O
光电流
分解水
化学
材料科学
太阳能燃料
半导体
化学工程
氢
光电化学电池
制氢
光电化学
带隙
太阳能电池
光电子学
光催化
电解质
催化作用
电极
电化学
有机化学
物理化学
工程类
生物化学
作者
Miao Zhong,Takashi Hisatomi,Yongbo Kuang,Jiao Zhao,Min Liu,Akihide Iwase,Qingxin Jia,Hiroshi Nishiyama,Tsutomu Minegishi,Mamiko Nakabayashi,Naoya Shibata,Ryo Niishiro,Chisato Katayama,Hidetaka Shibano,Masao Katayama,Akihiko Kudo,Taro Yamada,Kazunari Domen
摘要
Photoelectrochemical (PEC) devices that use semiconductors to absorb solar light for water splitting offer a promising way toward the future scalable production of renewable hydrogen fuels. However, the charge recombination in the photoanode/electrolyte (solid/liquid) junction is a major energy loss and hampers the PEC performance from being efficient. Here, we show that this problem is addressed by the conformal deposition of an ultrathin p-type NiO layer on the photoanode to create a buried p/n junction as well as to reduce the charge recombination at the surface trapping states for the enlarged surface band bending. Further, the in situ formed hydroxyl-rich and hydroxyl-ion-permeable NiOOH enables the dual catalysts of CoO(x) and NiOOH for the improved water oxidation activity. Compared to the CoO(x) loaded BiVO4 (CoO(x)/BiVO4) photoanode, the ∼6 nm NiO deposited NiO/CoO(x)/BiVO4 photoanode triples the photocurrent density at 0.6 V(RHE) under AM 1.5G illumination and enables a 1.5% half-cell solar-to-hydrogen efficiency. Stoichiometric oxygen and hydrogen are generated with Faraday efficiency of unity over 12 h. This strategy could be applied to other narrow band gap semiconducting photoanodes toward the low-cost solar fuel generation devices.
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