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利用具有增强界面接触的工程化二维/二维BiMoO₄/NiAl-LDH S型异质催化剂,高效可见光驱动去除废水中的持久性抗生素和合成染料。

Efficient visible-light-driven removal of persistent antibiotics and synthetic dyes from wastewater using an engineered 2D/2D BiMoO/NiAl-LDH S-scheme heterocatalyst with enhanced interfacial contact.

作者信息

Lee Dong-Eun, Moru Satyanarayana, Jo Wan-Kuen, Tonda Surendar

机构信息

School of Architecture, Civil, Environmental and Energy Engineering, Kyungpook National University, 80 Daehak-ro, Buk-gu, Daegu, 41566, Republic of Korea.

School of Advanced Sciences, VIT-AP University, Amaravati, Andhra Pradesh, 522237, India.

出版信息

Environ Res. 2025 Feb 15;267:120699. doi: 10.1016/j.envres.2024.120699. Epub 2024 Dec 25.

DOI:10.1016/j.envres.2024.120699
PMID:39725142
Abstract

Highly efficient photocatalysts for degrading persistent antibiotics and synthetic dye pollutants under visible light are crucial for sustainable environmental remediation. In this study, we engineered a novel BiMoO (BMO)/NiAl-LDH (layered double hydroxide) hybrid catalyst with a unique 2D/2D heterostructure, optimized for the visible-light-driven elimination of ciprofloxacin (CPF) and hazardous synthetic dyes such as rhodamine B and methylene blue. The optimized BMO-30/LDH hybrid demonstrated exceptional photocatalytic performance, achieving nearly complete degradation of CPF and synthetic dyes with high mineralization efficiency, surpassing many previously reported state-of-the-art photocatalysts. This superior activity is primarily attributed to the formation of an S-scheme heterojunction, which enhances charge separation while maintaining strong redox potentials in both components. This mechanism enables the simultaneous generation of reactive O and OH radicals. The hybrid's enhanced efficiency is further driven by synergistic effects, including strong visible light absorption, a large surface area, and a well-integrated 2D/2D configuration with face-to-face interfacial contact. These structural features maximize charge carrier separation, reduce recombination, and ensure robust photocatalytic activity. Additionally, the hybrid exhibited excellent reusability, retaining over 93% of its initial activity after five cycles. This study introduces a novel approach to engineering advanced 2D/2D heterojunction photocatalysts, highlighting their potential for practical water treatment and environmental remediation applications.

摘要

高效的可见光下用于降解持久性抗生素和合成染料污染物的光催化剂对于可持续环境修复至关重要。在本研究中,我们设计了一种具有独特二维/二维异质结构的新型BiMoO(BMO)/NiAl-LDH(层状双氢氧化物)复合催化剂,该催化剂针对可见光驱动去除环丙沙星(CPF)以及罗丹明B和亚甲基蓝等有害合成染料进行了优化。优化后的BMO-30/LDH复合材料表现出卓越的光催化性能,能以高矿化效率实现CPF和合成染料的几乎完全降解,超过了许多先前报道的先进光催化剂。这种优异的活性主要归因于形成了S型异质结,它增强了电荷分离,同时在两种组分中保持较强的氧化还原电位。这种机制能够同时产生活性氧和羟基自由基。复合材料效率的提高还受到协同效应的驱动,包括强烈的可见光吸收、大表面积以及具有面对面界面接触的良好整合的二维/二维结构。这些结构特征使电荷载流子分离最大化,减少复合,并确保强大的光催化活性。此外,该复合材料表现出优异的可重复使用性,经过五个循环后仍保留其初始活性的93%以上。本研究介绍了一种设计先进二维/二维异质结光催化剂的新方法,突出了它们在实际水处理和环境修复应用中的潜力。

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