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壳聚糖在促进双铁酸铋作为过一硫酸盐激活剂用于抗生素去除的催化活性中的作用。

The role of chitosan in promoting the catalytic activity of bismuth ferrite as peroxymonosulfate activator for antibiotics removal.

机构信息

School of Chemical Sciences, Universiti Sains Malaysia, 11800 Penang, Malaysia.

School of Chemical Sciences, Universiti Sains Malaysia, 11800 Penang, Malaysia.

出版信息

Int J Biol Macromol. 2024 Oct;277(Pt 3):134453. doi: 10.1016/j.ijbiomac.2024.134453. Epub 2024 Aug 3.

Abstract

Chitosan possesses electron-rich amino (-NH) and hydroxyl (-OH) moieties which can anchor with transition metal ions during synthesis. Herein, chitosan was employed as an additive to prepare bismuth ferrite (BFO) via hydrothermal approach. The characterization studies revealed that adding chitosan during BFO synthesis leads to the creation of more oxygen vacancies. The performance of chitosan modified BFO (CMB) was evaluated as peroxymonosulfate (PMS) activator for ciprofloxacin (CIP) removal. Apparently, the addition of 10 wt% chitosan during BFO synthesis (CMB-10) resulted in 1.7 times increase of performance compared to the pristine BFO. Increasing the catalyst loading and PMS dosage resulted in positive effect with 5.7 and 1.9 times rate enhancement, respectively. The CMB-10 exhibited tolerance against pH variation, water matrix, and interfering species. The scavenging experiments indicated that singlet oxygen (O), superoxide radicals (O) and sulfate radicals (SO) played a major role in CIP degradation. These reactive oxygen species were generated from PMS activation via Fe/Fe and Bi/Bi coupling, and oxygen vacancies on the catalyst surface. The CIP degradation pathways were also elucidated based on the detected CIP intermediates. Overall, this study provides insights into the use of chitosan to prepare sustainable materials for pollutants removal via PMS activation.

摘要

壳聚糖具有富电子的氨基(-NH)和羟基(-OH)基团,在合成过程中可以与过渡金属离子锚定。本文采用壳聚糖作为添加剂,通过水热法制备了铁酸铋(BFO)。表征研究表明,在 BFO 合成过程中添加壳聚糖会导致更多氧空位的产生。通过过一硫酸盐(PMS)活化来评价壳聚糖修饰的 BFO(CMB)对环丙沙星(CIP)去除的性能。显然,在 BFO 合成过程中添加 10wt%壳聚糖(CMB-10)可使性能提高 1.7 倍。增加催化剂负载量和 PMS 用量分别可使反应速率提高 5.7 倍和 1.9 倍。CMB-10 对 pH 值变化、水基质和干扰物质具有耐受性。清除实验表明,单线态氧(O)、超氧自由基(O)和硫酸根自由基(SO)在 CIP 降解中起主要作用。这些活性氧物质是通过催化剂表面上的 Fe/Fe 和 Bi/Bi 偶联以及氧空位从 PMS 活化中产生的。还根据检测到的 CIP 中间体阐明了 CIP 的降解途径。总的来说,这项研究为通过 PMS 活化制备可持续去除污染物的壳聚糖基材料提供了新的思路。

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