Application of nanoscale CeO2 as Fenton-like catalyst in the field of environment and bioscience

IF 1.2 4区 化学 Q4 CHEMISTRY, ANALYTICAL
Han XU , Xiang CHU , Jing XU , Meng ZHAO , Lin PENG , Lingling ZHANG , Xiao WANG
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Abstract

Fenton reaction has been regarded as one of the most potent ways to cost-efficiently degrade organic contaminants and cure cancer by inducing cell apoptosis and necrosis. However, commercial Fe-base catalysts and natural enzymes are suffering from high costs and low durability. Exploring a new catalyst for reducing cost and avoiding secondary pollution is demanding. Recent research illustrates that CeO2 owns a specific oxygen vacancy structure and Ce3+/Ce4+ redox cycle, which is thought to be the origin of Fenton-like reaction activities. Significantly, inducing heteroatoms promotes the concentration of oxygen vacancy and Ce3+ ions, and the electrons transfer between Ce and heteroatoms accelerates the redox cycles. The broad reaction pH value and low biotoxicity endow CeO2 with enormous potential in organic pollutants’ disposal and artificial enzyme for healthcare. Because of their excellent stability, Ce-base catalysts are more accessible for storage and transformation than natural enzymes. Meanwhile, electro-/photochemistry technologies are believed to reduce subsequent pollution and potentially be applied in biology fields. This review focuses on the Fenton-like reaction process and its application in environmental engineering and life science.

Abstract Image

纳米氧化铈类芬顿催化剂在环境与生物科学领域的应用
芬顿反应被认为是通过诱导细胞凋亡和坏死来经济有效地降解有机污染物和治疗癌症的最有效方法之一。然而,商用铁基催化剂和天然酶存在成本高、耐久性低等问题。探索降低成本、避免二次污染的新型催化剂是迫切需要的。最近的研究表明,CeO2具有特定的氧空位结构和Ce3+/Ce4+氧化还原循环,这被认为是芬顿类反应活性的来源。显著的是,杂原子的诱导促进了氧空位和Ce3+离子的浓度,Ce和杂原子之间的电子转移加速了氧化还原循环。广泛的反应pH值和低的生物毒性使CeO2在有机污染物处理和医疗保健人工酶方面具有巨大的潜力。由于其优异的稳定性,铈基催化剂比天然酶更易于储存和转化。同时,电/光化学技术被认为可以减少后续污染,并有可能应用于生物领域。本文综述了类芬顿反应过程及其在环境工程和生命科学中的应用。
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来源期刊
CiteScore
3.60
自引率
25.00%
发文量
17223
审稿时长
35 days
期刊介绍: Chinese Journal of Analytical Chemistry(CJAC) is an academic journal of analytical chemistry established in 1972 and sponsored by the Chinese Chemical Society and Changchun Institute of Applied Chemistry, Chinese Academy of Sciences. Its objectives are to report the original scientific research achievements and review the recent development of analytical chemistry in all areas. The journal sets up 5 columns including Research Papers, Research Notes, Experimental Technique and Instrument, Review and Progress and Summary Accounts. The journal published monthly in Chinese language. A detailed abstract, keywords and the titles of figures and tables are provided in English, except column of Summary Accounts. Prof. Wang Erkang, an outstanding analytical chemist, academician of Chinese Academy of Sciences & Third World Academy of Sciences, holds the post of the Editor-in-chief.
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