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氧化石墨烯中低配位的 Mn-N 位点诱导过二硫酸盐活化降解四环素:工艺优化与理论计算。

Low-coordinated Mn-N sites in graphene oxide induce peroxydisulfate activation for tetracycline degradation: Process optimization and theoretical calculation.

机构信息

College of Life and Environmental Sciences, Central South University of Forestry and Technology, Shaoshan South Road, Tianxin District, Changsha 410004, China.

College of Life and Environmental Sciences, Central South University of Forestry and Technology, Shaoshan South Road, Tianxin District, Changsha 410004, China.

出版信息

Environ Res. 2024 Nov 1;260:119621. doi: 10.1016/j.envres.2024.119621. Epub 2024 Jul 15.

DOI:10.1016/j.envres.2024.119621
PMID:39019142
Abstract

Atom-dispersed low-coordinated transition metal-N catalysts exhibit excellent efficiency in activating peroxydisulfate (PDS) for environmental remediation. However, their catalytic performance is limited due to metal-N coordination number and single-atom loading amount. In this study, low-coordinated nitrogen-doped graphene oxide (GO) confined single-atom Mn catalyst (Mn-SA/NGO) was synthesized by molten salt-assisted pyrolysis and coupled to PDS for degradation of tetracycline (TC) in water. Aberration-corrected high-angle annular dark-field scanning transmission electron microscopy (AC-HAADF-STEM) and X-ray absorption fine structure spectroscopy (XAFS) analysis showed the successful doping of single-atom Mn (weight percentage 1.6%) onto GO and the formation of low-coordinated Mn-N sites. The optimized parameters obtained by Box-Behnken Design achieved 100% TC removal in both prediction and experimental results. The Mn-SA/NGO + PDS system had strong anti-interference ability for TC removal in the presence of anions. Besides, Mn-SA/NGO possessed good reusability and stability. O, •OH, and O were the main active species for TC degradation, and the TC mineralization reached 85.1%. Density functional theory (DFT) calculations confirmed that the introduction of single atoms Mn could effectively enhance adsorption and activation of PDS. The findings provide a reference for the synthesis of high-performance single-atom catalysts for effective removal of antibiotics.

摘要

原子分散的低配位过渡金属-N 催化剂在激活过硫酸盐(PDS)用于环境修复方面表现出优异的效率。然而,由于金属-N 配位数和单原子负载量的限制,它们的催化性能有限。在这项研究中,通过熔融盐辅助热解合成了低配位氮掺杂氧化石墨烯(GO)限域的单原子 Mn 催化剂(Mn-SA/NGO),并将其与 PDS 耦合用于水中四环素(TC)的降解。像差校正高角环形暗场扫描透射电子显微镜(AC-HAADF-STEM)和 X 射线吸收精细结构光谱(XAFS)分析表明,GO 上成功掺杂了单原子 Mn(重量百分比为 1.6%),并形成了低配位 Mn-N 位。Box-Behnken 设计得到的优化参数在预测和实验结果中均实现了 100%TC 去除。在阴离子存在的情况下,Mn-SA/NGO+PDS 体系对 TC 去除具有很强的抗干扰能力。此外,Mn-SA/NGO 具有良好的可重复使用性和稳定性。O、•OH 和 O 是 TC 降解的主要活性物质,TC 的矿化率达到 85.1%。密度泛函理论(DFT)计算证实,单原子 Mn 的引入可以有效地增强 PDS 的吸附和活化。研究结果为合成高效单原子催化剂以有效去除抗生素提供了参考。

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