富氮 ZIF-8 衍生碳材料激活过一硫酸盐降解双酚 A

Toxics Pub Date : 2024-05-12 DOI:10.3390/toxics12050359
Xiaofeng Tang, Hanqing Xue, Jiawen Li, Shengnan Wang, Jie Yu, Tao Zeng
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引用次数: 0

摘要

双酚 A(BPA)是一类有机污染物,广泛应用于制药业。然而,它的广泛使用对生态系统的完整性和人类健康都造成了严重危害。基于过一硫酸盐(PMS)通过异相催化剂的高级氧化工艺(AOPs)经常被用来处理持久性污染物。本研究考察了双酚 A 在过渡金属位点锚定掺氮碳质基底(M-N-C)材料激活的 PMS 氧化体系中的降解性能。M-N-C 材料作为活化过一硫酸盐(PMS)的异相催化剂,有望克服传统碳材料在 PMS 活化过程中活性不足的局限性。然而,在合成过程中金属位点的合并给 M-N-C 的结构设计带来了严峻的挑战。在这里,采用 ZIF-8 作为碳质载体的前驱体,金属离子可以很容易地穿透基底的笼状结构,而富含 N 的连接体可以作为锚定金属阳离子的有效配体,从而克服了这一尴尬的限制。研究结果表明,M-N-C/PMS 体系可有效去除水基质中的双酚 A,其中获得的富氮 ZIF-8 衍生物 Cu-N-C 在 PMS 活化过程中表现出优异的活性和稳定性,并对环境因素的变化具有突出的耐受性。此外,还通过基于 ECOSAR 系统的毒性评估软件工具(T.E.S.T.)研究了双酚 A 及其降解中间体的生物毒性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Degradation of Bisphenol A by Nitrogen-Rich ZIF-8-Derived Carbon Materials-Activated Peroxymonosulfate
Bisphenol A (BPA), representing a class of organic pollutants, finds extensive applications in the pharmaceutical industry. However, its widespread use poses a significant hazard to both ecosystem integrity and human health. Advanced oxidation processes (AOPs) based on peroxymonosulfate (PMS) via heterogeneous catalysts are frequently proposed for treating persistent pollutants. In this study, the degradation performance of BPA in an oxidation system of PMS activated by transition metal sites anchored nitrogen-doped carbonaceous substrate (M-N-C) materials was investigated. As heterogeneous catalysts targeting the activation of peroxymonosulfate (PMS), M-N-C materials emerge as promising contenders poised to overcome the limitations encountered with traditional carbon materials, which often exhibit insufficient activity in the PMS activation process. Nevertheless, the amalgamation of metal sites during the synthesis process presents a formidable challenge to the structural design of M-N-C. Herein, employing ZIF-8 as the precursor of carbonaceous support, metal ions can readily penetrate the cage structure of the substrate, and the N-rich linkers serve as effective ligands for anchoring metal cations, thereby overcoming the awkward limitation. The research results of this study indicate BPA in water matrix can be effectively removed in the M-N-C/PMS system, in which the obtained nitrogen-rich ZIF-8-derived Cu-N-C presented excellent activity and stability on the PMS activation, as well as the outstanding resistance towards the variation of environmental factors. Moreover, the biological toxicity of BPA and its degradation intermediates were investigated via the Toxicity Estimation Software Tool (T.E.S.T.) based on the ECOSAR system.
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