Department of Chemistry, Liaoning University, Shenyang 110036, PR China.
Ultrason Sonochem. 2011 Jan;18(1):177-83. doi: 10.1016/j.ultsonch.2010.05.002. Epub 2010 May 13.
Recently, the sonocatalytic technology using various semiconductors combined with ultrasonic irradiation has been received much attention to solve the environmental problems. In this paper, nano-sized titanium dioxide (TiO(2)) powder as a sonocatalyst was irradiated by ultrasound and the generation of reactive oxygen species (ROS) during sonocatalytic reaction process has been estimated by the method of Oxidation-Extraction Photometry (OEP). That is, the 1,5-diphenylcarbohydrazide (DPCI) can be oxidized by ROS into diphenylcarbonzone (DPCO), which can be extracted by the mixed solution of benzene and carbon tetrachloride and show the great absorbance at 563 nm wavelength. The synergistic effect of TiO(2) and ultrasonic irradiation was estimated and some influencing factors, such as ultrasonic irradiation time and TiO(2) addition amount on the generation of ROS were reviewed. The results indicate that the quantities of generated ROS increase with the increase of ultrasonic irradiation time and TiO(2) addition amount. Moreover, the relationship between quantities of generated ROS and DPCI concentration was also studied. And then, several quenchers were used to determine the kind of the generated ROS. At last, the researches on the sonocatalytic degradation of organic dyes and the corresponding reaction kinetics have also been performed, which is found to follow the pseudo first-order kinetics approximately. This paper may offer some important subjects for broadening the applications of sonocatalytic technology.
最近,结合超声辐射使用各种半导体的声催化技术已经受到了广泛关注,以解决环境问题。本文采用超声辐射法,以纳米二氧化钛(TiO2)粉末作为声催化剂,通过氧化萃取光度法(OEP)估计了声催化反应过程中活性氧物质(ROS)的产生。即,1,5-二苯基碳酰肼(DPCI)可以被 ROS 氧化成二苯基碳酰肼(DPCO),它可以用苯和四氯化碳的混合溶液萃取,并在 563nm 波长处显示出很强的吸光度。评估了 TiO2和超声辐射的协同效应,并考察了一些影响因素,如超声辐射时间和 TiO2添加量对 ROS 生成的影响。结果表明,ROS 的生成量随着超声辐射时间和 TiO2添加量的增加而增加。此外,还研究了生成的 ROS 量与 DPCI 浓度之间的关系。然后,使用几种猝灭剂来确定生成的 ROS 的种类。最后,还进行了有机染料的声催化降解及其相应的反应动力学研究,发现其近似遵循假一级动力学。本文可能为拓宽声催化技术的应用提供了一些重要的课题。