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用于脉冲超声的双模态声-光催化的纳米结构 TiO 空化剂。

Nanostructured TiO cavitation agents for dual-modal sonophotocatalysis with pulsed ultrasound.

机构信息

School of Chemical and Biomedical Engineering, Nanyang Technological University, 62 Nanyang Drive, 637459, Singapore.

Department of Engineering Science, University of Oxford, Oxford OX1 3PJ, United Kingdom.

出版信息

Ultrason Sonochem. 2021 May;73:105530. doi: 10.1016/j.ultsonch.2021.105530. Epub 2021 Mar 17.

Abstract

Current sonochemical methods rely on spatially uncontrolled cavitation for radical species generation to promote chemical reactions. To improve radical generation, sonosensitizers have been demonstrated to be activated by cavitation-based light emission (sonoluminescence). Unfortunately, this process remains relatively inefficient compared to direct photocatalysis, due to the physical separation between cavitation event and sonosensitizing agent. In this study, we have synthesized nanostructured titanium dioxide particles to couple the source for cavitation within a photocatalytic site to create a sonophotocatalyst. In doing so, we demonstrate that site-controlled cavitation from the nanoparticles using pulsed ultrasound at reduced acoustic powers resulted in the sonochemical degradation methylene blue at rates nearly three orders of magnitude faster than other titanium dioxide-based nanoparticles by conventional methods. Sonochemical degradation was directly proportional to the measured cavitation produced by these sonophotocatalysts. Our work suggests that simple nanostructuring of current sonosensitizers to enable on-site cavitation greatly enhances sonochemical reaction rates.

摘要

目前的超声化学方法依赖于空间上不可控的空化来产生自由基物种以促进化学反应。为了提高自由基的生成效率,已经证明声敏剂可以通过基于空化的发光(声致发光)被激活。不幸的是,与直接光催化相比,这个过程仍然相对低效,因为空化事件和声敏剂之间存在物理分离。在这项研究中,我们合成了纳米结构的二氧化钛颗粒,将空化源与光催化位结合在一起,以制造声光催化剂。通过这样做,我们证明了使用脉冲超声在降低的声功率下从纳米颗粒中进行场控空化导致亚甲基蓝的超声化学降解速率比其他基于二氧化钛的纳米颗粒通过传统方法快近三个数量级。超声化学降解与这些声光催化剂产生的测量空化直接成正比。我们的工作表明,通过简单的纳米结构设计使当前的声敏剂能够实现就地空化,可大大提高超声化学反应速率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1dc8/8044705/37f162c68859/ga1.jpg

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