Decade Milestone Advancement of Defect-Engineered g-C3N4 for Solar Catalytic Applications

被引:2
|
作者
Shaoqi Hou [1 ]
Xiaochun Gao [2 ]
Xingyue Lv [2 ]
Yilin Zhao [2 ]
Xitao Yin [2 ]
Ying Liu [2 ]
Juan Fang [3 ]
Xingxing Yu [4 ]
Xiaoguang Ma [2 ]
Tianyi Ma [5 ]
Dawei Su [1 ]
机构
[1] School of Mathematical and Physical Sciences, Faculty of Science, University of Technology Sydney (UTS)
[2] Laboratory of Plasma and Energy Conversion, School of Physics and Optoelectronic Engineering, Ludong University
[3] School of Energy and Environmental Engineering, University of Science and Technology Beijing
[4] Department of Chemistry, The University of Tokyo
[5] School of Science, STEM College, RMIT University
关键词
D O I
暂无
中图分类号
O643.36 [催化剂]; O644.1 [光化学];
学科分类号
摘要
Over the past decade, graphitic carbon nitride(g-C3N4) has emerged as a universal photocatalyst toward various sustainable carbo-neutral technologies. Despite solar applications discrepancy, g-C3N4is still confronted with a general fatal issue of insufficient supply of thermodynamically active photocarriers due to its inferior solar harvesting ability and sluggish charge transfer dynamics. Fortunately, this could be significantly alleviated by the “all-in-one” defect engineering strategy, which enables a simultaneous amelioration of both textural uniqueness and intrinsic electronic band structures. To this end, we have summarized an unprecedently comprehensive discussion on defect controls including the vacancy/non-metallic dopant creation with optimized electronic band structure and electronic density, metallic doping with ultraactive coordinated environment(M–Nx, M–C2N2, M–O bonding), functional group grafting with optimized band structure, and promoted crystallinity with extended conjugation π system with weakened interlayered van der Waals interaction. Among them, the defect states induced by various defect types such as N vacancy, P/S/halogen dopants, and cyano group in boosting solar harvesting and accelerating photocarrier transfer have also been emphasized. More importantly, the shallow defect traps identified by femtosecond transient absorption spectra(fs-TAS) have also been highlighted. It is believed that this review would pave the way for future readers with a unique insight into a more precise defective g-C3N4“customization”, motivating more profound thinking and flourishing research outputs on g-C3N4-based photocatalysis.
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页码:159 / 224
页数:66
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