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Synthesis, Properties, and Photocatalytic Hydrogen Production of G‐C 3 N 4 /MXene Composites: A Review

光催化 材料科学 X射线光电子能谱 制氢 分解水 石墨氮化碳 化学工程 傅里叶变换红外光谱 太阳能 纳米技术 煅烧 可见光谱 载流子 漫反射红外傅里叶变换 氢燃料 复合数 化石燃料 氮化碳 表面改性 光催化分解水 化学气相沉积 吸收光谱法 太阳能燃料 吸收(声学) 红外光谱学 碳纤维 化学能 吸附 表面光电压 光谱学 表面工程 红外线的 带隙 氢经济
作者
Sami Ur Rahman,Salman Khan,Sheraz Ahmad,Syed Israr Shah,Zafar Ali,Shohreh Azizi,Malik M. Maaza
出处
期刊:Clean-soil Air Water [Wiley]
卷期号:54 (2)
标识
DOI:10.1002/clen.70114
摘要

ABSTRACT The increasing global energy demand for clean energy, combined with the depletion of fossil fuels and rising environmental pollution, has driven the search of sustainable energy solutions. Photocatalytic hydrogen (H 2 ) production using solar energy offers a promising pathway for clean fuel generation. Among various photocatalysts, graphitic carbon nitride (g‐C 3 N 4 ) has attracted attention due to its appropriate band structure, chemical stability, and metal‐free composition. However, limitations such as low surface area, rapid charge carrier recombination, and narrow light absorption spectrum limit its efficiency. To address these issues, g‐C 3 N 4 /MXene composites have emerged as advanced photocatalytic materials. MXenes, a family of two‐dimensional (2D) transition metal carbides/nitrides, possess high electrical conductivity, tunable surface functionalities, and excellent interfacial compatibility with g‐C 3 N 4 . This review highlights various synthesis strategies, including polymerization, electrostatic self‐assembly, solution mixing, and calcination for fabricating g‐C 3 N 4 /MXene heterostructures. The improved physiochemical properties such as enhanced charge transport, increased active surface sites, extended visible‐light absorption, and photostability are systematically discussed. Special emphasis is placed on advanced characterization techniques such as X‐ray diffraction (XRD), Scanning electron microscopy (SEM), X‐ray photoelectron spectroscopy (XPS), and Fourier transform infrared (FT‐IR) which are essential for probing the crystallinity, morphology, chemical states, and functional group of the composite material. Moreover, the photocatalytic performance of g‐C 3 N 4 /MXene composites in H 2 evolution is explored, supported by recent density functional theory (DFT) studies that provide mechanistic insight into charge transfer and active site interactions. The review concludes by outlining current challenges and proposing future research directions, including surface engineering, interface modulation, and computational design, to further optimize g‐C 3 N 4 /MXene photocatalysts for efficient and scalable H 2 production.

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