Recent progress on elemental sulfur based photocatalysts for energy and environmental applications

光催化 硫黄 掺杂剂 环境修复 材料科学 纳米技术 异质结 人口 兴奋剂 化学 催化作用 污染 有机化学 冶金 光电子学 生态学 人口学 社会学 生物
作者
Yogesh Kumar,Rohit Kumar,Pankaj Raizada,Aftab Aslam Parwaz Khan,Van‐Huy Nguyen,Soo Young Kim,Quyet Van Le,Rangabhashiyam Selvasembian,Archana Singh,Sourav Gautam,Chinh Chien Nguyen,Pardeep Singh
出处
期刊:Chemosphere [Elsevier BV]
卷期号:305: 135477-135477 被引量:20
标识
DOI:10.1016/j.chemosphere.2022.135477
摘要

The growing needs of the rising population and blatant misuse of resources have contributed enormously to environmental problems. Among the various methods, photocatalysis has emerged as one of the effective remediation methods. The continuous search for effective photocatalysts that can be made from abundant, cheap, non-toxic materials is going on. Although sulfur is a known insulator, recent sulfur use as a visible light photocatalyst has ushered a new era in this direction. Sulfur is a non-toxic, cheap, and abundant photocatalyst, exhibiting significant photocatalytic properties. But, hydrophobicity, poor light-harvesting and high recombination rate of charge carriers in elemental sulfur photocatalyst are some of the major drawbacks of the elemental sulfur photocatalyst. The photocatalytic activity of sulfur as a single element was low, but various methods such as nanoscaling, heterojunction formation, doping and surface modifications have been used to enhance it. The review highlights sulfur's crystal structure, electronic and optical properties, and morphological changes, making it an excellent visible light photocatalyst. The article points to the limitations of sulfur as a single photocatalyst and various strategies to improve the shortcomings. More recently, there has been an emphasis on the synthesis of metal-free photocatalysts. This review provides its readers with a comprehensive detail of sulfur being used as a dopant in improving the photocatalytic properties of metal-free photocatalysts and their environmental remediation use. Finally, the conclusion and future perspectives for sulfur-based nanostructures are presented.
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