Lan Shuang, Zheng Mupeng, Zhuo Fangping, Zhu Mankang, Hou Yudong
Key Laboratory of Advanced Functional Materials, Faculty of Materials and Manufacturing, Beijing University of Technology, Ministry of Education, Beijing 100124, China.
Department of Materials and Earth Sciences, Technical University of Darmstadt, 64287 Darmstadt, Germany.
Materials (Basel). 2023 Jul 20;16(14):5122. doi: 10.3390/ma16145122.
The internal electric field within a piezoelectric material can effectively inhibit the recombination of photogenerated electron-hole pairs, thus serving as a means to enhance photocatalytic efficiency. Herein, we synthesized a NaBiTiO (NBT) catalyst by the hydrothermal method and optimized its catalytic performance by simple high-voltage poling. When applying light and mechanical stirring on a 2 kV mm poled NBT sample, almost 100% of Rhodamine B solution could be degraded in 120 min, and the reaction rate constant reached as high as 28.36 × 10 min, which was 4.2 times higher than that of the unpoled NBT sample. The enhanced piezo-photocatalytic activity is attributed to the poling-enhanced internal electric field, which facilitates the efficient separation and transfer of photogenerated carriers. Our work provides a new option and idea for the development of piezo-photocatalysts for environmental remediation and pollutant treatment.
压电材料内部的电场能够有效抑制光生电子 - 空穴对的复合,从而成为提高光催化效率的一种手段。在此,我们通过水热法合成了一种NaBiTiO(NBT)催化剂,并通过简单的高压极化优化了其催化性能。当对在2 kV/mm下极化的NBT样品施加光照和机械搅拌时,在120分钟内几乎可以将100%的罗丹明B溶液降解,反应速率常数高达28.36×10⁻³ min⁻¹,这比未极化的NBT样品高出4.2倍。增强的压电光催化活性归因于极化增强的内部电场,它促进了光生载流子的有效分离和转移。我们的工作为开发用于环境修复和污染物处理的压电光催化剂提供了新的选择和思路。