氮化石墨的元素掺杂改性策略研究:综述

IF 1.3 4区 化学 Q4 CHEMISTRY, PHYSICAL
Min Xiao, Jianghao Tian, Chunru Sun, Huixian Zhang
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引用次数: 0

摘要

高分子半导体材料石墨氮化碳(g-C3N4)具有显著的可见光光催化效率、成本效益、直接合成和化学稳定性,因此已被广泛用于废水处理中去除污染物。然而,未经改性的 g-C3N4 仍存在一些缺陷,包括不理想的可见光吸收、明显的电子-空穴重组和宽带隙,从而导致光催化效率受到限制。通过大量的研究工作,人们设计出了多种改性方法来增强其光催化能力。本文系统地介绍了新型 g-C3N4 材料的发展历程、制备方法、光催化机理、优缺点,以及各种改性策略,包括形貌控制、元素掺杂、缺陷构建、半导体耦合和异质结构构建。本文详细讨论了各种元素掺杂的 g-C3N4 材料的制备过程、表征结果、实际应用以及在去除污染物方面的性能提升效果,指出多元素掺杂改性策略在提高 g-C3N4 光催化性能方面具有明显优势,凸显了 g-C3N4 材料的未来发展前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Research on the Element Doping Modification Strategy of Graphite Carbon Nitride: A Review

Research on the Element Doping Modification Strategy of Graphite Carbon Nitride: A Review

The polymer semiconductor material known as graphitic carbon nitride (g-C3N4) has been extensively utilized for the removal of pollutants in wastewater treatment due to its notable visible photocatalytic efficiency, cost-effectiveness, straightforward synthesis, and chemical robustness. Nonetheless, unmodified g-C3N4 still exhibits deficiencies including suboptimal visible light absorption, pronounced electron-hole recombination, and wide band gaps, resulting in constrained photocatalytic efficacy. Through extensive research efforts, diverse modification approaches have been devised to enhance its photocatalytic capabilities. This paper systematically introduces the development history, preparation methods, photocatalytic mechanisms, advantages, and disadvantages of novel g-C3N4 materials, the various modification strategies including morphology control, element doping, defect construction, semiconductor coupling, and hetero-structure construction. In this paper, the preparation process, characterization results, practical applications, and performance enhancement effects of various elementally doped g-C3N4 materials in pollutant removal are discussed in detail, indicating the advantages of multielement doping modification strategy have obvious advantages in improving the photocatalytic performance of g-C3N4, highlighting the future prospects of g-C3N4 materials.

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来源期刊
Kinetics and Catalysis
Kinetics and Catalysis 化学-物理化学
CiteScore
2.10
自引率
27.30%
发文量
64
审稿时长
6-12 weeks
期刊介绍: Kinetics and Catalysis Russian is a periodical that publishes theoretical and experimental works on homogeneous and heterogeneous kinetics and catalysis. Other topics include the mechanism and kinetics of noncatalytic processes in gaseous, liquid, and solid phases, quantum chemical calculations in kinetics and catalysis, methods of studying catalytic processes and catalysts, the chemistry of catalysts and adsorbent surfaces, the structure and physicochemical properties of catalysts, preparation and poisoning of catalysts, macrokinetics, and computer simulations in catalysis. The journal also publishes review articles on contemporary problems in kinetics and catalysis. The journal welcomes manuscripts from all countries in the English or Russian language.
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