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February 25, 2026Crystal Growth & Design5 citations

Synergy of Carbon Doping and Sulfur Vacancies Engineering in MOF-Derived Hollow Bi 2 S 3 for High-Efficiency Photocatalytic Nitrogen Fixation

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HWHao WangYPYuxuan PanHLHuishan Liang

Key Points

  • This research aims to improve the photocatalytic efficiency of Bi2S3 for nitrogen fixation by engineering carbon doping and sulfur vacancies.
  • Synthesized carbon-doped hollow Bi2S3 nanorods from Bi-MOF using a one-step hydrothermal process.
  • Adjusted hydrothermal reaction time to regulate microcrystalline and defect structures.
  • Measured ammonia production rate using full sunlight exposure.
  • Achieved an ammonia production rate of approximately 147.78 μmol·h–1·g–1 with hollow Bi2S3-2.
  • Demonstrated improved photocatalytic activity attributed to sulfur defects providing abundant active sites.
  • Revealed two protonation pathways for ammonia generation from the photoexcited electrons.

Abstract

The development of efficient photocatalytic materials is the key to promoting the advancement and application of photocatalytic technology. Bi2S3, a relatively narrow bandgap semiconductor, can absorb visible light and even near-infrared light. However, the fast recombination rate of photogenerated electron–hole pairs, limited surface active sites, and susceptibility to photocorrosion of pure Bi2S3 severely restrict its photocatalytic efficiency. In this paper, carbon-doped sulfur-rich defective hollow Bi2S3 nanorods were prepared in one step using Bi-MOF as the precursor. The microcrystalline structure and defect structure were regulated by adjusting the hydrothermal reaction time. The ammonia production rate of hollow Bi2S3-2 under full sunlight was approximately 147.78 μmol·h–1·g–1. The superior photocatalytic activity of hollow Bi2S3-2 is mainly attributed to its sulfur defects, which can provide abundant active sites to activate nitrogen molecules. It reveals that the photoexcited electrons generate ammonia through two protonation pathways and weaken the N≡N bond in the photocatalytic nitrogen fixation path. This work provides new insights into photocatalytic nitrogen fixation and achieves efficient N2 photoreduction by synthesizing photocatalysts from MOF derivatives.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/699e91d7f5123be5ed04fa34https://doi.org/10.1021/acs.cgd.5c01546
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