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Transition metals-doped g-C3N4 nanostructures as advanced photocatalysts for energy and environmental applications

石墨氮化碳 纳米材料 兴奋剂 过渡金属 背景(考古学) 光催化 分解水 可重用性 纳米技术 材料科学 化学 催化作用 计算机科学 光电子学 有机化学 古生物学 程序设计语言 软件 生物
作者
Kavya Kalidasan,Srinivas Mallapur,K. Munirathnam,H. Nagarajaiah,M. B. Madhusudana Reddy,Kakarla Raghava Reddy,Anjanapura V. Raghu
出处
期刊:Chemosphere [Elsevier]
卷期号:352: 141354-141354 被引量:71
标识
DOI:10.1016/j.chemosphere.2024.141354
摘要

Graphitic carbon nitride (g–C3N4)–based heterostructured photocatalysts have received significant attention for its potential applications in the treatment of wastewater and hydrogen evolution. The utilization of semiconductor materials in heterogeneous photocatalysis has recently received great attention due to their potential and eco-friendly properties. Doping with metal ions plays a crucial role in altering the photochemical characteristics of g-C3N4, effectively enhancing photoabsorption into the visible range and thus improving the photocatalytic performance of doped photocatalysts. As an emerging nanomaterial, nanostructured g-C3N4 represents a visible light-active semiconducting photocatalyst that has attracted significant interest in the photocatalysis field, particularly for its practical water treatment applications. To the best of our knowledge, investigations of functionalized photocatalytic (PC) materials on 3d transition metal-doped g-C3N4 remain unexplored in the existing literature. g-C3N4 based heterohybrid photocatalysts have demonstrated excellent reusability, making them highly promising for wastewater treatment applications. This paper describes the overview of numerous studies conducted on the heterostructured g-C3N4 photocatalysts with various 3d metals. Research studies have revealed that the introduction of element doping with various 3d transition metals (e.g., Ti, Mn, Fe, Co, Ni, Cu, Zn, etc.) into g-C3N4 is an efficient approach to enhance degradation efficacy and boost photocatalytic activity (PCA) of doped g-C3N4 catalysts. Moreover, the significance of g-C3N4 heterostructured nanohybrids is highlighted, particularly in the context of wastewater treatment applications. The study concludes by providing insights into future perspectives in this developing area of research, with a specific focus on the degradation of various organic contaminants.
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