4.6 Article

2D layered SiC/C2N van der Waals type-II heterostructure: a visible-light-driven photocatalyst for water splitting

期刊

NEW JOURNAL OF CHEMISTRY
卷 44, 期 36, 页码 15439-15445

出版社

ROYAL SOC CHEMISTRY
DOI: 10.1039/d0nj02877k

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资金

  1. National Natural Science Foundation of China [11764018]
  2. Natural Science Foundation of Jiangxi Province [20202ACBL211004]
  3. Science and Technology Planning Project of Ganzhou City
  4. Program of Qingjiang Excellent Young Talents, Jiangxi University of Science and Technology [JXUSTQJYX201805]
  5. Science and Technology Fund of Guizhou Province [Qiankehejichu[2019]1310]
  6. PhD Starts Fund Project of Tongren University [trxyDH1616]
  7. Joint fund project of Guizhou Provincial Department of Science and Technology [QianKeHe LH Zi [2017]7319]

向作者/读者索取更多资源

Exploring simple, efficient and low cost photocatalysts for hydrogen production driven by visible light is a hot topic in the field of photocatalysis. Here, we study a two-dimensional (2D) layered SiC/C2N van der Waals heterostructure as a possible visible light photocatalyst for water splitting, using hybrid density functional theory calculations. We find that the heterostructure composed of SiC and C2N is a type II heterostructure with a mild band gap (1.58 eV), which can promote the effective separation of electron-hole pairs, thereby suppressing the recombination of photogenerated carriers. The phonon dispersion andab initiomolecular dynamics analysis indicate its good kinetic and thermodynamic stability. Remarkably, atomic projection density of states and energy band structure show that the valence band maximum (VBM) and conduction band minimum (CBM) of the SiC/C2N heterostructure are provided by SiC and C2N, respectively. And its band edge meets the requirements of the redox potential for water splitting. In addition, as the SiC-based heterostructure can retain the excellent visible light performance of the C2N component, it laid the foundation for designing visible-light-driven SiC/C2N photocatalysts. This work may provide valuable information for experimenters to design type II heterostructure photocatalytic materials for water splitting.

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