Department of Chemistry and Biosciences, Srinivasa Ramanujan Centre, SASTRA Deemed to Be University, Kumbakonam, 612001, Tamil Nadu, India.
Department of Chemistry and Biosciences, Srinivasa Ramanujan Centre, SASTRA Deemed to Be University, Kumbakonam, 612001, Tamil Nadu, India.
Chemosphere. 2022 Sep;303(Pt 1):135052. doi: 10.1016/j.chemosphere.2022.135052. Epub 2022 May 23.
Semiconductor photocatalysis is thought to be a viable solution for addressing the growing problem of environmental pollution. Bismuth (Bi) metal oxides can function as a direct plasmonic photocatalyst or cocatalyst to accelerate the photogenerated charge separation and thus improve their photocatalytic activity. Hence, Bi-based photocatalysts have received a lot of attention due to their extensive environmental applications, including pollutant remediation and energy concepts. Massive efforts have been undertaken in the recent decade to find superior Bi-metal oxides (BiXO X = MO, W, or Cr) and to uncover the corresponding photocatalytic reaction mechanism for the degradation of organic contaminants in water. Herein, the unique crystalline and electronic properties and main synthesis methods, as well as the major Bi-Based direct Z-scheme photocatalysts, are timely discussed and summarized in their usage in water treatment. Besides, the impact of BiXO in energy storage devices and solar energy conversion is reviewed as an energy application. Finally, the future development and challenges of Z-scheme-based BiXO photocatalysts are briefly explored, summarized, and forecasted.
半导体光催化被认为是解决日益严重的环境污染问题的一种可行方法。铋(Bi)金属氧化物可用作直接等离子体光催化剂或共催化剂,以加速光生电荷分离,从而提高其光催化活性。因此,基于 Bi 的光催化剂由于其广泛的环境应用而受到了很多关注,包括污染物修复和能源概念。在最近十年中,人们做出了巨大的努力来寻找更好的 Bi 金属氧化物(BiXO,X=MO、W 或 Cr),并揭示相应的光催化反应机制,以降解水中的有机污染物。在此,及时讨论并总结了其在水处理中的独特晶体和电子特性以及主要合成方法,以及主要的基于 Bi 的直接 Z 型光催化剂。此外,还综述了 BiXO 在储能装置和太阳能转化中的能源应用。最后,简要探讨、总结和预测了基于 Z 型的 BiXO 光催化剂的未来发展和挑战。