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Enhanced photocatalytic and photoelectrochemical performance of g-C3N4/BiVO4 heterojunction: A combined experimental and theoretical study

机译:G-C3N4 / BIVO4异质结的增强光催化和光电化学性能:一种综合实验和理论研究

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摘要

Semiconductor-based photocatalytic technology is regarded as a promising strategy for solve environmental and energy problems. Here, g-C3N4/BiVO4 heterojunction photocatalysts were prepared by a modified sol-gel technique by varying the weight ratio of g-C3N4 under facile conditions. The incorporation of g-C3N4 is found to significantly improve the photocatalytic and photoelectrochemical activity of BiVO4. The optimized g-C3N4/BiVO4 sample exhibits a greatly improved kinetic constant in photocatalytic degradation that is 7.7 times of that in pure BiVO4, and an enhancement of 3 time for the photocurrent density. Systematic experimental studies, combined with first-principles calculations, reveal that the improved photocatalytic and photoelectrochemical activities arise from the efficient separation of charge carriers due to the heterojunctions formed between g-C3N4 and BiVO4. Our work provides a feasible route to develop a high-efficiency photocatalytic technology for environmental contaminants degradation and renewable energy.
机译:基于半导体的光催化技术被认为是解决环境和能量问题的有希望的战略。这里,通过改变体内G-C3N4的重量比,通过改性溶胶 - 凝胶技术制备G-C3N4 / BIVO4异质结光催化剂。发现G-C3N4的掺入可显着改善BIVO4的光催化和光电化学活性。优化的G-C3N4 / BIVO4样品在光催化降解中表现出极大的动力常数,其在纯BIVO4中的7.7倍,并为光电流密度增强3次。系统实验研究与第一原理计算结合揭示了由于G-C3N4和BIVO4之间形成的杂交功能,从电荷载体的有效分离中产生改善的光催化和光电化学活性。我们的工作提供了一种可行的路线,以开发一种高效的光催化技术,用于环境污染剂降解和可再生能源。

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