Strategies for Improving the Photocatalytic Hydrogen Evolution Reaction of Carbon Nitride‐Based Catalysts

Author:

Chu Xueze1,Sathish C.I.1,Yang Jae‐Hun1,Guan Xinwei1,Zhang Xiangwei1,Qiao Liang2,Domen Kazunari3,Wang Shaobin4,Vinu Ajayan1,Yi Jiabao1ORCID

Affiliation:

1. Global Innovative Center of Advanced Nanomaterials School of Engineering College of Engineering Science and Environment University of Newcastle Callaghan NSW 2308 Australia

2. School of Physics University of Electronic Science and Technology of China Chengdu 610054 P. R. China

3. Research Initiative for Supra‐Materials Interdisciplinary Cluster for Cutting Edge Research Shinshu University 4‐17‐1, Wakasato Nagano‐shi Nagano 380‐8533 Japan

4. School of Chemical Engineering and Advanced Materials The University of Adelaide Adelaide SA 5005 Australia

Abstract

AbstractDue to the depletion of fossil fuels and their‐related environmental issues, sustainable, clean, and renewable energy is urgently needed to replace fossil fuel as the primary energy resource. Hydrogen is considered as one of the cleanest energies. Among the approaches to hydrogen production, photocatalysis is the most sustainable and renewable solar energy technique. Considering the low cost of fabrication, earth abundance, appropriate bandgap, and high performance, carbon nitride has attracted extensive attention as the catalyst for photocatalytic hydrogen production in the last two decades. In this review, the carbon nitride‐based photocatalytic hydrogen production system, including the catalytic mechanism and the strategies for improving the photocatalytic performance is discussed. According to the photocatalytic processes, the strengthened mechanism of carbon nitride‐based catalysts is particularly described in terms of boosting the excitation of electrons and holes, suppressing carriers recombination, and enhancing the utilization efficiency of photon‐excited electron–hole. Finally, the current trends related to the screening design of superior photocatalytic hydrogen production systems are outlined, and the development direction of carbon nitride for hydrogen production is clarified.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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