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FeOOH纳米棒对有机染料和抗生素的高摩擦催化性能

High Tribocatalytic Performance of FeOOH Nanorods for Degrading Organic Dyes and Antibiotics.

作者信息

Sun Shiyu, Sui Xiaohui, Yu Haimiao, Zheng Ying, Zhu Xiaoting, Wu Xinyan, Li Yanqiang, Lin Qing, Zhang Yongcheng, Ye Wanneng, Liang Yanna

机构信息

State Key Laboratory of Bio-fibers and Eco-textiles, College of Physics, Qingdao University, Qingdao, 266071, P. R. China.

Department of Environmental and Sustainable Engineering, University at Albany, State University of New York, Albany, NY, 12222, USA.

出版信息

Small Methods. 2024 Dec;8(12):e2301784. doi: 10.1002/smtd.202301784. Epub 2024 Feb 28.

DOI:10.1002/smtd.202301784
PMID:38415975
Abstract

Tribocatalysis is vitally important for electrochemistry, energy conservation, and water treatment. Exploring eco-friendly and low-cost tribocatalysts with high performance is crucial for practical applications. Here, the highly efficient tribocatalytic performance of FeOOH nanorods is reported. The factors related to the tribocatalytic activity such as nanorod diameter, surface area, and surface roughness are investigated, and the diameter of the FeOOH nanorods is found to have a significant effect on their tribocatalytic performance. As a result, under ultrasonic excitation, the optimized FeOOH nanorods exhibit superior tribocatalytic degradation toward rhodamine B (RhB), acid orange 7, methylene blue, methyl orange dyes, and their mixture. The RhB and mixed dyes are effectively degraded within 20 min (k = 0.179 min) and 35 min (k = 0.089 min), respectively, with the FeOOH nanorods showing excellent reusability. Moreover, antibiotics, such as tetracycline hydrochloride, phenol, and bisphenol A are efficiently degraded. Investigation of the catalytic mechanism reveals that the friction-generated h as well as these yielded •OH and •O active radicals participate in the catalytic reaction. This work not only shed light on the design of high-performance tribocatalyst but also demonstrates that by harvesting mechanical energy, the FeOOH nanorods are promising materials for removing organic contaminants in wastewater.

摘要

摩擦催化对于电化学、能源节约和水处理至关重要。探索具有高性能的环保型低成本摩擦催化剂对于实际应用至关重要。在此,报道了FeOOH纳米棒的高效摩擦催化性能。研究了与摩擦催化活性相关的因素,如纳米棒直径、表面积和表面粗糙度,发现FeOOH纳米棒的直径对其摩擦催化性能有显著影响。结果,在超声激发下,优化后的FeOOH纳米棒对罗丹明B(RhB)、酸性橙7、亚甲基蓝、甲基橙染料及其混合物表现出优异的摩擦催化降解性能。RhB和混合染料分别在20分钟(k = 0.179分钟)和35分钟(k = 0.089分钟)内有效降解,FeOOH纳米棒表现出优异的可重复使用性。此外,抗生素如盐酸四环素、苯酚和双酚A也能被有效降解。对催化机理的研究表明,摩擦产生的h以及产生的•OH和•O活性自由基参与了催化反应。这项工作不仅为高性能摩擦催化剂的设计提供了思路,还表明通过收集机械能,FeOOH纳米棒是去除废水中有机污染物的有前途的材料。

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