Interfacial coupled engineering of plasmonic amorphous MoO3-x nanodots/ g-C3N4 nanosheets for photocatalytic water splitting and photothermal conversion

CHEMICAL ENGINEERING JOURNAL(2023)

引用 9|浏览13
暂无评分
摘要
Semiconductor-based plasmonic materials have attracted extensive attention for photocatalytic systems. How-ever, their photocatalytic reactions are hindered by limited light-harvesting ability and the transfer rate of photo -generated electrons. Herein, vacancy engineering and phase engineering are rationally integrated to develop amorphous molybdenum oxide (a-MoO3_x) nanodots anchored on g-C3N4 as a highly active photocatalyst. Through high localized surface plasmon resonance (LSPR) effect of a-MoO3_x nanodots and tunable electrical properties induced by the heterostructural interface, the Z-scheme a-MoO3_x/g-C3N4 heterostructure demon-strates broadband absorption and the excited photo-generated electrons. Further theoretical calculations demonstrate that the enhancement of photocatalytic and photothermal performance is mainly attributed to the highly localized Anderson tail states of a-MoO3_x. Consequently, the a-MoO3_x/g-C3N4 heterostructure exhibits a photocurrent density of-36.5 mu A cm_2, which is about 2.7 and 4.1 times higher than that of pure g-C3N4 nanosheets (-13.5 mu A cm_2) and a-MoO3_x nanodots (-9 mu A cm_2), respectively. The photocatalytic perfor-mance enhancement relying on defects and long-range disorder of a-MoO3_x in Z-scheme heterostructure is explored.
更多
查看译文
关键词
Surface plasmon effect, AmorphousMoO3_x nanodots, Photocatalytic water splitting, Photothermal conversion
AI 理解论文
溯源树
样例
生成溯源树,研究论文发展脉络
Chat Paper
正在生成论文摘要