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在碳球上简便合成黄铁矿 FeS 用于高效类芬顿反应。

Facile synthesis of pyrite FeS on carbon spheres for high-efficiency Fenton-like reaction.

机构信息

School of Chemical Engineering and Technology, Tianjin University, Tianjin, 300050, China.

Peric Special Gases Co., Ltd., Handan, 057550, China.

出版信息

Chemosphere. 2024 May;355:141799. doi: 10.1016/j.chemosphere.2024.141799. Epub 2024 Mar 28.

Abstract

Designing iron-based catalysts for Fenton-like reactions with peroxymonosulfate (PMS) as oxidants have attracted growing attentions. Herein, pyrite FeS supported on carbon spheres (FeS@C) is synthesized by a facile low-temperature method. The FeS@C/PMS system can degrade carbamazepine (CBZ) effectively in a wide pH range. Sulfate radicals (SO), hydroxyl radicals (·OH), superoxide radical (O), and singlet oxygen (O) are the responsible reactive oxygen species (ROSs) for CBZ degradation. Moreover, in the simulated fixed-bed reactor, the FeS@C/PMS system can maintain a high CBZ removal ratio of >95% for than 8 h, exhibiting its excellent stability. The outstanding performance of FeS@C/PMS system is attributed to the presence of carbon spheres and lattice S, which together promote the Fe(III)/Fe(II) redox cycle. The FeS@C is a promising catalyst due to its facile synthesis, low cost, high efficiency, and excellent stability to activate PMS for organics degradation.

摘要

设计基于铁的催化剂用于芬顿样反应,以过一硫酸盐(PMS)作为氧化剂,引起了越来越多的关注。本文采用简便的低温法合成了载于碳球上的黄铁矿 FeS(FeS@C)。FeS@C/PMS 体系在较宽的 pH 范围内能有效降解卡马西平(CBZ)。硫酸盐自由基(SO)、羟基自由基(·OH)、超氧自由基(O)和单线态氧(O)是 CBZ 降解的主要活性氧物种(ROSs)。此外,在模拟固定床反应器中,FeS@C/PMS 体系能在 8 小时以上保持>95%的高 CBZ 去除率,表现出优异的稳定性。FeS@C/PMS 体系的优异性能归因于碳球和晶格 S 的存在,它们共同促进了 Fe(III)/Fe(II)的氧化还原循环。FeS@C 是一种很有前途的催化剂,因为它具有合成简便、成本低、效率高、稳定性好等优点,能有效地激活 PMS 降解有机物。

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