Construction of piezoelectric photocatalyst Au/BiVO4 for efficient degradation of tetracycline and studied at single-particle level

Yujia Zhang, Yan Liu, Xueqin Gong, Zeyan Wang, Yuanyuan Liu, Peng Wang, Hefeng Cheng, Baibiao Huang, Zhaoke Zheng
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Abstract

Piezopotential-assisted catalysis has been proven to be a low-cost and high-efficiency environmental purification process. Herein, Au/bismuth vanadate (BiVO4) piezoelectric photocatalysts are prepared by modifying highly dispersed Au nanoparticles (AuNPs) on piezoelectric BiVO4 microcrystal by a deposition-precipitation approach. Under visible light irradiation and assisted ultrasound excitation, the removal rate of tetracycline was 95% within 60 min, demonstrating the optimum photocatalytic performance over 3Au/BiVO4. The significantly enhanced photocatalytic performance is due to the synergistic coupling of plasmonic and piezotronic effect based on facet engineering. Single-particle spectroscopy technology can provide photoluminescence (PL) lifetime and PL spectra information in the micro-/nano regions, thereby exploring the charge transfer behavior of heterostructures. Single-particle PL images revealed a significant attenuation of PL emission and shortened PL lifetime of 3Au/BiVO4, compared with BiVO4, indicating that high-density dispersed AuNPs promote charge transfer. In situ monitoring of individual BiVO4 and 3Au/BiVO4 particles before and after polarization treatment confirms that the piezoelectric field of the BiVO4 decahedron further promotes separation of photogenerated carriers induced by plasmonic effect. Driven by the piezoelectric potential induced by ultrasonic vibration near the heterostructures, high-energy hot electrons excited on plasmonic AuNPs can be effectively extracted to BiVO4. This work provides new choices for designing high-performance pollutant treatment catalysts.
构建用于高效降解四环素的压电光催化剂 Au/BiVO4,并进行单颗粒水平的研究
压电催化已被证明是一种低成本、高效率的环境净化工艺。本文通过沉积-沉淀方法,在压电钒酸铋(BiVO4)微晶上改性高分散金纳米粒子(AuNPs),制备了金/钒酸铋(BiVO4)压电光催化剂。在可见光照射和辅助超声激发下,60 分钟内四环素的去除率达到 95%,证明了 3Au/BiVO4 的最佳光催化性能。光催化性能的大幅提高得益于基于刻面工程的质子效应和压电效应的协同耦合。单颗粒光谱技术可提供微米/纳米区域的光致发光(PL)寿命和 PL 光谱信息,从而探索异质结构的电荷转移行为。单颗粒聚光图像显示,与 BiVO4 相比,3Au/BiVO4 的聚光发射显著衰减,聚光寿命缩短,这表明高密度分散的 AuNPs 促进了电荷转移。对极化处理前后的单个 BiVO4 和 3Au/BiVO4 粒子进行的原位监测证实,BiVO4 十面体的压电场进一步促进了由等离子效应诱导的光生载流子的分离。在异质结构附近超声波振动诱导的压电势的驱动下,等离子体 AuNPs 上激发的高能热电子可以有效地被提取到 BiVO4 上。这项工作为设计高性能污染物处理催化剂提供了新的选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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