Enhanced Piezo‐photocatalytic Performances of AgNbO3 Materials for Dye Decomposition Via Polarization Engineering

光催化 材料科学 热液循环 极化(电化学) 极化 载流子 化学工程 压电 纳米技术 光电子学 复合材料 电介质 催化作用 化学 有机化学 物理化学 工程类 铁电性
作者
Xue Yang,Xiaoxue Liu,Wei Cai,Zhenhua Wang,Rui Huang,Zeping Rao,Chunyan Zhang,Chunlin Fu
出处
期刊:ChemPhotoChem [Wiley]
卷期号:8 (2) 被引量:2
标识
DOI:10.1002/cptc.202300142
摘要

Abstract The limitation to enhancing photocatalytic performance in photocatalysts lies in the rapid recombination of photo‐induced electrons and holes. Herein, AgNbO 3 photocatalysts were synthesized by the hydrothermal method. The effects of hydrothermal temperature on the microstructure and photocatalytic/piezo‐photocatalytic performances of AgNbO 3 have been systematically investigated. The AgNbO 3 cubes synthesized at 180 °C for 24 h exhibited the best photocatalytic/piezo‐photocatalytic performances among all samples. The corona poling as an important method of polarization engineering is applied to promote further the separation and migration of charge carriers in AgNbO 3 . The polarized AgNbO 3 synthesized at 170 °C exhibited outstanding piezo‐photocatalytic performance, and a degradation rate of 95 % for RhB within 90 min and a high apparent rate constant of 0.02978 min −1 were achieved. On the one hand, the alternating piezoelectric field caused by ultrasonic‐assisted illumination destroyed the shielding effect and enhanced the separation of electron‐hole pairs. On the other hand, polarization engineering induced by corona poling promoted the separation and migration of photo‐induced carriers, thereby realizing more efficient utilization of these charges during the photocatalytic decomposition process. This work presents a facile way to achieve superior piezo‐photocatalytic performances of AgNbO 3 ‐based photocatalyst via polarization engineering.
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