g‐C3N4‐Based Photocatalytic Materials for Converting CO2 Into Energy: A Review

Author:

Zhang Ping1ORCID,Li Ning1,Li Longjian1,Yu Yongchong1,Tuerhong Reyila1,Su Xiaoping1,Zhang Bin1,Han Lijuan2,Han Yuqi3

Affiliation:

1. Key Laboratory of Environment-Friendly Composite Materials of the State Ethnic Affairs Commission Gansu Provincial Biomass Function Composites Engineering Research Center Key Laboratory for Utility of Environment-Friendly Composite Materials and Biomass in University of Gansu Province College of Chemical Engineering Northwest Minzu University Lanzhou 730030 P.R.China

2. Gansu Natural Energy Institute Gansu Academy of Science Lanzhou 730046 P.R.China

3. College of Chemistry and Chemical Engineering He Xi University No.846 North Circle Road Zhangye 734000 P.R.China

Abstract

AbstractEnvironmental pollution management and renewable energy development are humanity‘s biggest issues in the 21st century. The rise in atmospheric CO2, which has surpassed 400 parts per million, has stimulated research on CO2 reduction and conversion methods. Presently, photocatalytic conversion of CO2 to valuable hydrocarbons enables the transformation of solar energy into chemical energy and offers a novel avenue for energy conversion while regulating the greenhouse effect. This is an ideal strategy for simultaneously addressing environmental issues and the energy crisis. Photocatalysts are essential to photocatalytic processes. Photocatalyst is the core of photocatalytic technology, and graphite carbon nitride (g‐C3N4) has attracted much attention because of its nonmetallic characteristics, and it has the characteristics of low cost, tunable electronic structure, easy manufacture and strong reducibility. However, its activity is not only affected by external reaction conditions, but also by the band gap structure, physical and chemical stability, surface morphology and specific surface area of the photocatalyst it. In this paper, the application progress of g‐C3N4‐based photocatalytic materials in CO2 reduction is reviewed, and the modification strategies of g‐C3N4‐based catalysts to obtain better catalytic efficiency and selectivity in CO2 photocatalytic reduction are summarized, and the future development of this material is prospected.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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