Remarkably Boosting Piezocatalytic Performance of Sr0.5Ba0.5Nb2O6 Piezoceramics via Size Optimization and Oxygen Vacancy Engineering

材料科学 罗丹明B 粒度 氧气 空位缺陷 纳米技术 球磨机 化学工程 催化作用 凝聚态物理 复合材料 光催化 物理 化学 生物化学 有机化学 工程类
作者
Jian Dai,Zhenhao Fan,Yangke Long,Wenfeng Yue,Fu Huang,Yitao Jiao,Yuqun Deng,Yunfei Chang,Dawei Wang
出处
期刊:Advanced Functional Materials [Wiley]
卷期号:34 (48) 被引量:4
标识
DOI:10.1002/adfm.202408754
摘要

Abstract Piezocatalysis is capable of harnessing mechanical energy for environmental remediation, which is regarded as a green and promising technology to be exploited. Piezoceramics are struggling to be used as highly efficient piezocatalysts due to their grain size reaching tens of micrometers usually. Herein, a feasible and straightforward method is proposed to turn piezoceramic powders into highly efficient piezocatalysts by integrating size optimization and oxygen vacancy modulation. This strategy is validated by treating lead‐free Sr 0.5 Ba 0.5 Nb 2 O 6 (SBN) piezoceramic powders with high‐energy ball‐milling (hBM). The rate constant k value of 46.95 × 10 −3 min −1 for rhodamine B (RhB) piezocatalytic degradation of SBN‐hBM‐12h is almost 18 times higher than that of pristine SBN. Besides, the SBN‐hBM‐12 h catalyst performed superior antibacterial properties against Escherichia coli. The enhanced piezocatalytic efficiency is attributed to the introduced abundant oxygen vacancies absorbing and activating O 2 into reactive oxygen species. Well‐modulated oxygen vacancy concentration can effectively accelerate the generation and separation of free carriers. However, the excess oxygen vacancies in SBN render the weakened piezoresponse thus suppressing the piezocatalytic activity. This study elucidates the critical role of oxygen vacancies in piezocatalysis and provides insights into the development of efficient piezocatalysts.
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