Experimental and DFT Insights into Enhanced Charge Transfer and Efficient Photocatalytic Performance of Tubular g-C 3 N 4 /BiVO 4 {001} Heterojunctions
作者:Xiong Zhang, Linwei Yao, Fuchun Zhang, Zhiyong Zhang · 发表于:Chemistry of Materials · 年份:2025 · DOI:10.1021/acs.chemmater.5c00928 · 被引用次数:6 · 研究领域:Advanced Photocatalysis Techniques、Perovskite Materials and Applications、Gas Sensing Nanomaterials and Sensors
Research on the photocatalytic properties of semiconductor photocatalysts is critical for addressing environmental pollution and energy crisis. In this study, the optimal process of hydrothermal preparation of BiVO 4 was determined, and BiVO 4 with highly exposed {001} crystal facets was prepared. The photocatalytic properties of g-C 3 N 4 (Graphite-phase carbon nitride) nanomaterials with different morphologies were prepared and investigated based on DFT (Density Functional Theory). Among these, tubular g-C 3 N 4 (TCN), exhibiting superior photocatalytic activity, was selected to fabricate TCN/BiVO 4 nanocomposites with varying TCN contents. These composites demonstrated narrower band gaps compared to individual TCN and BiVO 4 {001} photocatalysts, along with enhanced electrical and optical properties. Notably, the 3TCN/BiVO 4 nanocomposite exhibited an apparent reaction rate constant for MB (Methylene Blue) degradation of 0.042 min –1, which is 4.5 times that of pristine TCN (0.0093 min –1 ) and 2.3 times that of BiVO 4 {001} (0.018 min –1 ). Theoretical calculations confirm that TCN/BiVO 4 forms a structurally stable van der Waals heterojunction. The photocatalytic mechanism analysis revealed that the heterojunction suppresses the recombination of photogenerated electron–hole pairs, while the built-in electric field facilitates carrier transfer, thereby significantly improving photocatalytic performance. Additionally, repeatability and stability tests were conducted on the...