光催化
分解水
析氧
光催化分解水
材料科学
氢
制氢
氧化物
氧气
光化学
石墨烯
氧化还原
化学工程
纳米技术
化学
催化作用
物理化学
电化学
生物化学
有机化学
电极
工程类
冶金
作者
Lihua Lin,Yiwen Ma,Junie Jhon M. Vequizo,Mamiko Nakabayashi,Chen Gu,Xiaoping Tao,Hiroaki Yoshida,Yuriy Pihosh,Yuta Nishina,Akira Yamakata,Naoya Shibata,Takashi Hisatomi,Tsuyoshi Takata,Kazunari Domen
标识
DOI:10.1038/s41467-024-44706-4
摘要
Abstract So-called Z-scheme systems permit overall water splitting using narrow-bandgap photocatalysts. To boost the performance of such systems, it is necessary to enhance the intrinsic activities of the hydrogen evolution photocatalyst and oxygen evolution photocatalyst, promote electron transfer from the oxygen evolution photocatalyst to the hydrogen evolution photocatalyst, and suppress back reactions. The present work develop a high-performance oxysulfide photocatalyst, Sm 2 Ti 2 O 5 S 2 , as an hydrogen evolution photocatalyst for use in a Z-scheme overall water splitting system in combination with BiVO 4 as the oxygen evolution photocatalyst and reduced graphene oxide as the solid-state electron mediator. After surface modifications of the photocatalysts to promote charge separation and redox reactions, this system is able to split water into hydrogen and oxygen for more than 100 hours with a solar-to-hydrogen energy conversion efficiency of 0.22%. In contrast to many existing photocatalytic systems, the water splitting activity of the present system is only minimally reduced by increasing the background pressure to 90 kPa. These results suggest characteristics suitable for applications under practical operating conditions.
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