{"title":"Efficient degradation of tetracycline <i>via</i> iron(II,III) oxide nanoparticle-activated hydrogen peroxide: mechanisms and performance","authors":"Xu Cao, Kunlei Wang, Fei Long, Zhanli Chen, Ping Zhang, Baoqing Zeng, Longyong Wu","doi":"10.1180/clm.2025.10017","DOIUrl":null,"url":null,"abstract":"Abstract Magnetite-enriched mining tailings are a cost-effective and abundant catalytic material with inherent magnetic recyclability. Yet their practical application in catalysis is often constrained by their limited surface area and sluggish reaction kinetics. To address these issues, we developed a facile one-step co-precipitation method to synthesize a magnetic nano-Fe 3 O 4 (MNP) catalyst that exhibits enhanced surface reactivity for efficient activation of H 2 O 2 towards tetracycline (TC) degradation. The system achieved complete (100%) removal of TC at an initial concentration of 20 mg L –1 within 90 min and demonstrated robust catalytic performance across weakly acidic to neutral pH conditions. Mechanistic investigations confirmed that ⋅OH is the primary reactive oxygen species involved, with ⋅O 2 ⁻ and 1 O 2 providing supplementary contributions to the degradation. Remarkably, the intrinsic magnetic properties ensured efficient MNP catalyst recovery. This work provides a sustainable and scalable wastewater treatment strategy, leveraging mining tailings as a cost-effective resource to treat wastewater while also providing economic and environmental benefits.","PeriodicalId":10311,"journal":{"name":"Clay Minerals","volume":"60 4","pages":"296-306"},"PeriodicalIF":2.1000,"publicationDate":"2025-11-20","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://www.cambridge.org/core/services/aop-cambridge-core/content/view/BB37B63FC305AAB169A469B7DC0711D8/S0009855825100174a.pdf/div-class-title-efficient-degradation-of-tetracycline-via-iron-ii-iii-oxide-nanoparticle-activated-hydrogen-peroxide-mechanisms-and-performance-div.pdf","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Clay Minerals","FirstCategoryId":"0","ListUrlMain":"https://doi.org/10.1180/clm.2025.10017","RegionNum":4,"RegionCategory":"地球科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q4","JCRName":"CHEMISTRY, PHYSICAL","Score":null,"Total":0}
引用次数: 0
Abstract
Abstract Magnetite-enriched mining tailings are a cost-effective and abundant catalytic material with inherent magnetic recyclability. Yet their practical application in catalysis is often constrained by their limited surface area and sluggish reaction kinetics. To address these issues, we developed a facile one-step co-precipitation method to synthesize a magnetic nano-Fe 3 O 4 (MNP) catalyst that exhibits enhanced surface reactivity for efficient activation of H 2 O 2 towards tetracycline (TC) degradation. The system achieved complete (100%) removal of TC at an initial concentration of 20 mg L –1 within 90 min and demonstrated robust catalytic performance across weakly acidic to neutral pH conditions. Mechanistic investigations confirmed that ⋅OH is the primary reactive oxygen species involved, with ⋅O 2 ⁻ and 1 O 2 providing supplementary contributions to the degradation. Remarkably, the intrinsic magnetic properties ensured efficient MNP catalyst recovery. This work provides a sustainable and scalable wastewater treatment strategy, leveraging mining tailings as a cost-effective resource to treat wastewater while also providing economic and environmental benefits.
富磁铁矿尾矿是一种经济高效、储量丰富的催化材料,具有磁性可回收性。然而,它们在催化中的实际应用往往受到其有限的表面积和缓慢的反应动力学的限制。为了解决这些问题,我们开发了一种简单的一步共沉淀法来合成磁性纳米fe3o4 (MNP)催化剂,该催化剂具有增强的表面反应性,可以有效地激活h2o2以降解四环素(TC)。该系统在90分钟内以20 mg L -1的初始浓度完全(100%)去除TC,并在弱酸性到中性pH条件下表现出强劲的催化性能。机理研究证实,⋅OH是主要的活性氧,⋅O 2和1 O 2对降解起到补充作用。值得注意的是,本征磁性能确保了MNP催化剂的高效回收。这项工作提供了一种可持续和可扩展的废水处理策略,利用采矿尾矿作为一种具有成本效益的资源来处理废水,同时也提供了经济和环境效益。
期刊介绍:
Clay Minerals is an international journal of mineral sciences, published four times a year, including research papers about clays, clay minerals and related materials, natural or synthetic. The journal includes papers on Earth processes soil science, geology/mineralogy, chemistry/material science, colloid/surface science, applied science and technology and health/ environment topics. The journal has an international editorial board with members from fifteen countries.