CeO2/BiYO3 photocatalyst for the degradation of tetracycline under visible light irradiation

IF 44 1区 医学 Q1 ENDOCRINOLOGY & METABOLISM
Tharit Lerdwiriyanupap, Anurak Waehayee, Thitipong Choklap, Jeeranan Prachanat, Hideki Nakajima, Tammanoon Chankhanittha, Teera Butburee, Theeranun Siritanon
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Abstract

Photocatalysis has received extensive attention as a promising method for reducing antibiotic contamination in water. In this study, we prepared and investigated the photodegradation efficiency of the CeO2/BiYO3 system, using tetracycline (TC) as a model pollutant. The composites demonstrated significantly higher photocatalytic activity compared to pure BiYO3 and CeO2, demonstrating their potential as effective photocatalysts. A detailed investigation of the band potentials indicated that the two semiconductors form a type II heterojunction, enhancing charge separation. Furthermore, the presence of the Ce3+/Ce4+ redox couple serves as an electron trap site, improving the photocatalytic performance by reducing electron-hole recombination. The catalyst achieved peak efficiency only during the first cycle. However, a simple annealing process effectively regenerated the catalyst to its original efficiency, suggesting that the CeO2/BiYO3 composite can be reused with minimal loss of activity. Additionally, we examined the distinct photodegradation mechanisms of pure BiYO3 and the CeO2/BiYO3 composite. Our results provide insights into how the formation of heterostructures influences photocatalytic processes. These findings are valuable for the future design and development of related heterostructure photocatalysts, aiming to enhance their efficiency for the degradation of various pollutants.

Abstract Image

在可见光照射下降解四环素的 CeO2/BiYO3 光催化剂
光催化作为一种减少水中抗生素污染的有效方法受到了广泛关注。在本研究中,我们以四环素(TC)为模型污染物,制备并研究了 CeO2/BiYO3 系统的光降解效率。与纯 BiYO3 和 CeO2 相比,复合材料表现出明显更高的光催化活性,证明了它们作为有效光催化剂的潜力。对带电位的详细研究表明,两种半导体形成了 II 型异质结,增强了电荷分离。此外,Ce3+/Ce4+氧化还原偶的存在可作为电子捕获点,通过减少电子-空穴重组提高光催化性能。催化剂仅在第一个周期达到峰值效率。然而,一个简单的退火过程就能有效地将催化剂再生到原来的效率,这表明 CeO2/BiYO3 复合材料可以重复使用,而且活性损失极小。此外,我们还研究了纯 BiYO3 和 CeO2/BiYO3 复合材料不同的光降解机制。我们的研究结果让我们深入了解了异质结构的形成如何影响光催化过程。这些发现对于今后设计和开发相关的异质结构光催化剂,提高其降解各种污染物的效率具有重要价值。
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来源期刊
The Lancet Diabetes & Endocrinology
The Lancet Diabetes & Endocrinology ENDOCRINOLOGY & METABOLISM-
CiteScore
61.50
自引率
1.60%
发文量
371
期刊介绍: The Lancet Diabetes & Endocrinology, an independent journal with a global perspective and strong clinical focus, features original clinical research, expert reviews, news, and opinion pieces in each monthly issue. Covering topics like diabetes, obesity, nutrition, and more, the journal provides insights into clinical advances and practice-changing research worldwide. It welcomes original research advocating change or shedding light on clinical practice, as well as informative reviews on related topics, especially those with global health importance and relevance to low-income and middle-income countries. The journal publishes various content types, including Articles, Reviews, Comments, Correspondence, Health Policy, and Personal Views, along with Series and Commissions aiming to drive positive change in clinical practice and health policy in diabetes and endocrinology.
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