Engineering nanostructures of CuO-based photocatalysts for water treatment: Current progress and future challenges

光催化 化学 纳米技术 氧化物 污染物 异质结 水处理 生化工程 催化作用 环境工程 材料科学 环境科学 生物化学 光电子学 有机化学 工程类
作者
Pankaj Raizada,Anita Sudhaik,Shilpa Patial,Vasudha Hasija,Aftab Aslam Parwaz Khan,Pardeep Singh,Sourav Gautam,Manpreet Kaur,Van‐Huy Nguyen
出处
期刊:Arabian Journal of Chemistry [Elsevier BV]
卷期号:13 (11): 8424-8457 被引量:283
标识
DOI:10.1016/j.arabjc.2020.06.031
摘要

Nowadays, increasing extortions regarding environmental problems and energy scarcity have stuck the development and endurance of human society. The issue of inorganic and organic pollutants that exist in water from agricultural, domestic, and industrial activities has directed the development of advanced technologies to address the challenges of water scarcity efficiently. To solve this major issue, various scientists and researchers are looking for novel and effective technologies that can efficiently remove pollutants from wastewater. Nanoscale metal oxide materials have been proposed due to their distinctive size, physical and chemical properties along with promising applications. Cupric Oxide (CuO) is one of the most commonly used benchmark photocatalysts in photodegradation owing to the fact that they are cost-effective, non-toxic, and more efficient in absorption across a significant fraction of solar spectrum. In this review, we have summarized synthetic strategies of CuO fabrication, modification methods with applications for water treatment purposes. Moreover, an elaborative discussion on feasible strategies includes; binary and ternary heterojunction formation, Z-scheme based photocatalytic system, incorporation of rare earth/transition metal ions as dopants, and carbonaceous materials serving as a support system. The mechanistic insight inferring photo-induced charge separation and transfer, the functional reactive radical species involved in a photocatalytic reaction, have been successfully featured and examined. Finally, a conclusive remark regarding current studies and unresolved challenges related to CuO are put forth for future perspectives.
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