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通过简便的超声辅助沉淀法提高锂掺杂钛酸钡的压电催化性能

Enhanced Piezocatalytic Performance of Li-doped BaTiO Through a Facile Sonication-Assisted Precipitation Approach.

作者信息

Dong Zekun, Guan Peiyuan, Zhou Lu, Jiang Yue, Chen Fandi, Wang Jinbo, Jia Haowei, Huang Yixuan, Cao Tao, Meng Linghui, Zhou Yingze, Li Mengyao, Wan Tao, Hu Long, Xu Zhemi, Han Zhaojun, Chu Dewei

机构信息

School of Materials Science and Engineering, University of New South Wales, Sydney, 2052, Australia.

Chemistry and Material Engineering College, Beijing Technology and Business University, Beijing, 100048, P. R. China.

出版信息

ChemSusChem. 2024 Oct 7;17(19):e202400796. doi: 10.1002/cssc.202400796. Epub 2024 May 31.

Abstract

Piezocatalysis-induced dye degradation has garnered significant attention as an effective method for addressing wastewater treatment challenges. In our study, we employed a room-temperature sonochemical method to synthesize piezoelectric barium titanate nanoparticles (BaTiO3: BTO) with varying levels of Li doping. This approach not only streamlined the sample preparation process but also significantly reduced the overall time required for synthesis, making it a highly efficient and practical method. One of the key findings was the exceptional performance of the Li-doped BTO nanoparticles. With 20 mg of Li additive, we achieved 90 % removal of Rhodamine B (RhB) dye within a relatively short timeframe of 150 minutes, all while subjecting the sample to ultrasonic vibration. This rapid and efficient dye degradation was further evidenced by the calculated kinetic rate constant, which indicated seven times faster degradation rate compared to pure BTO. The enhanced piezoelectric performance observed in the Li-doped BTO nanoparticles can be attributed to the strategic substitution of Li atoms, which facilitated a more efficient transfer of charge charges at the interface. Overall, our study underscores the potential of piezocatalysis coupled with advanced materials like Li-doped BTO nanoparticles as a viable and promising solution for wastewater treatment, offering both efficiency and environmental sustainability.

摘要

压电催化诱导的染料降解作为一种解决废水处理挑战的有效方法已引起广泛关注。在我们的研究中,我们采用室温声化学方法合成了不同锂掺杂水平的压电钛酸钡纳米颗粒(BaTiO₃:BTO)。这种方法不仅简化了样品制备过程,还显著减少了合成所需的总时间,使其成为一种高效实用的方法。关键发现之一是锂掺杂的BTO纳米颗粒具有卓越的性能。加入20毫克锂添加剂后,在150分钟的相对短时间内,我们实现了90%的罗丹明B(RhB)染料去除率,同时使样品受到超声振动。计算得到的动力学速率常数进一步证明了这种快速高效的染料降解,表明其降解速率比纯BTO快七倍。在锂掺杂的BTO纳米颗粒中观察到的增强压电性能可归因于锂原子的策略性取代,这促进了界面处电荷更有效的转移。总体而言,我们的研究强调了压电催化与锂掺杂BTO纳米颗粒等先进材料相结合作为废水处理可行且有前景的解决方案的潜力,既提供了效率又实现了环境可持续性。

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