Recent advances in engineering strategies of Bi-based photocatalysts for environmental remediation

环境修复 光催化 异质结 环境科学 纳米技术 计算机科学 材料科学 化学 催化作用 光电子学 污染 生态学 生物化学 生物 冶金
作者
Jahan Zeb Hassan,Ali Raza,Usman Qumar,Gao Li
出处
期刊:Sustainable Materials and Technologies [Elsevier]
卷期号:33: e00478-e00478 被引量:9
标识
DOI:10.1016/j.susmat.2022.e00478
摘要

A bismuth-based material serves as an interesting and innovative class of visible-light-driven photocatalysts that have paid a lot of attraction towards exceptional photo-oxidation capacity. The great progress for the decomposition of water oxidation and organic contaminants have been documented with the aid of photocatalytic strategies. At present, the classification of Bi-based photocatalysts can be given as bismuth metal, binary sulfides, multicomponent oxides, bismuth oxyhalides, binary oxides, and so forth. Although Bi provides advanced outcomes for photocatalysts towards energy development and environmental remediation, their productivity still is not at supreme level. Prompting recombination of e - -h + pairs (photogenerated) along with characteristic structural instability has restricted its applied usage. To resolve these issues, some strategies have been tendency to bismuth-rich strategy, elemental doping, facet control, defect engineering, and heterojunction. In this article, we represent a complete outline of their electronic structures, fundamental compositions, and synthesis schemes for numerous bismuth-based photocatalysts. Moreover, a number of environmental applications also have been conferred in detail, for instance degradation of water pollutants, H 2 -evolution, and CO 2 photoreduction, N 2 -fixation, as well as treatment of atmospheric pollutants. Utilizing the structural-property-activity associations, comprehensive methodologies for improvement of their photocatalytic progress have been discussed, including introduction of oxygen vacancies (Ov), heterojunction construction, bismuth-rich strategy, and morphology/facet control. Finally, a superior understanding for development of Bi-based photocatalysts and realistic design headed for environmental remediation via solar energy harvesting are outlined.
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