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g-C3N4材料在光催化能源轉換領域的新進展

Recent progress of graphitic phase carbon nitride photocatalytic materials on solar energy conversion

  • 摘要: 類石墨相氮化碳(g-C3N4)作為當前光催化領域的熱點材料,盡管在可見光響應范圍和載流子的遷移/分離方面不如人意,但其不含金屬、穩定性好,結構易于調控等優點依然備受關注,尤其是近年來基于g-C3N4的形貌與電子結構調控取得了大量的突破性進展。本文系統地綜述了針對g-C3N4缺陷的不同改性和優化方法,從形貌調控、結構優化、構建異質結三方面介紹了g-C3N4光催化材料的最新研究進展,重點闡述了針對改善光催化分解水效率的各種改性優化策略。以材料的維度尺寸作為切入點介紹了不同形貌g-C3N4的制備方法,從摻雜與缺陷調控角度總結了g-C3N4結構與光生載流子分離以及催化性能的關系,并且依據不同異質結類型歸納了g-C3N4基光催化材料體系。最后,對g-C3N4基光催化材料今后的發展與面臨的挑戰進行了展望和總結。

     

    Abstract: With the increasing consumption of fossil fuels, severe energy shortages and environmental issues are fast approaching. Therefore, the development of green energy resources is urgently appealed. Among them, the sunlight-driven production of hydrogen fuel with suitable photocatalysts is regarded as one of the potential strategies to meet the sustainable energy demand in the future. However, photocatalysis still faces significant uncertainties mainly because of the notorious photogenerated electron-hole (e-h) recombination and low carriers’ mobility. To achieve high photocatalytic performance, it is essential to tailor the spatial charge separation and fast charge transfer via electronic and structural manipulation of photocatalysts. As one of the hot-spot photocatalysts, graphitic phase carbon nitride (g-C3N4) has received tremendous attention in the study of solar-to-fuel (STF) conversion and carbon dioxide reduction reactions (CO2RR), owing to intrinsic merits, such as metal-free components, low-cost resources, good stability, and visible light response. Recently, considerable progress has been achieved to improve the photocatalytic STF efficiency of g-C3N4-based materials by developing strategies of structures and electric configurations engineering. In this study, different modification methods for g-C3N4 were systematically reviewed from the perspective of defects control to provide a new understanding of its structure-function relationship. Particularly, this study was composed in detail from three aspects to demonstrate the latest research progress of g-C3N4 photocatalytic materials. First, different routes toward g-C3N4 with different shapes were introduced, including 1D, 2D, and 3D. Second, doping effects and defect control on the separation and transfer of photogenerated electron-hole pairs were carefully reviewed. Finally, heterojunctions based on g-C3N4 were summarized, highlighting the Z-scheme heterojunction. In addition, some future directions and challenges for the enhancement of the photocatalytic efficiency upon g-C3N4 were pointed out according to our understanding of photocatalytic water splitting.

     

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