Synergistic adsorption and singlet oxygenation of humic acid on alkali-activated biochar via peroxymonosulfate activation

IF 8.9 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Chinese Chemical Letters Pub Date : 2025-05-01 Epub Date: 2024-07-14 DOI:10.1016/j.cclet.2024.110244
Huazhe Wang , Chenghuan Qiao , Chuchu Chen , Bing Liu , Juanshan Du , Qinglian Wu , Xiaochi Feng , Shuyan Zhan , Wan-Qian Guo
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Abstract

Humic acid (HA), as a represent of natural organic matter widely existing in water body, dose harm to water quality and human health; however, it was commonly treated as an environmental background substance while not targeted contaminant in advanced oxidation processes (AOPs). Herein, we investigated the removal of HA in the alkali-activated biochar (KBC)/peroxymonosulfate (PMS) system. The modification of the original biochar (BC) resulted in an increased adsorption capacity and catalytic activity due to the introduction of more micropores, mesopores, and oxygen-containing functional groups, particularly carbonyl groups. Mechanistic insights indicated that HA is primarily chemically adsorbed on the KBC surface, while singlet oxygen (1O2) produced by the PMS decomposition served as the major reactive species for the degradation of HA. An underlying synergistic adsorption and oxidation mechanism involving a local high concentration reaction region around the KBC interface was then proposed. This work not only provides a cost-effective solution for the elimination of HA but also advances our understanding of the nonradical oxidation at the biochar interface.

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通过过一硫酸盐活化,碱活化生物炭上的腐殖酸协同吸附和单线态氧合作用
腐植酸(HA)作为广泛存在于水体中的天然有机物的代表,对水质和人体健康造成危害;然而,它通常被视为环境背景物质,而不是高级氧化过程(AOPs)的目标污染物。在此,我们研究了碱活化生物炭(KBC)/过氧单硫酸根(PMS)体系对HA的去除。由于引入了更多的微孔、介孔和含氧官能团,特别是羰基,对原始生物炭(BC)进行了改性,从而提高了吸附能力和催化活性。机理分析表明,HA主要是化学吸附在KBC表面,而PMS分解产生的单重态氧(1O2)是HA降解的主要反应物质。然后提出了一种潜在的协同吸附和氧化机制,涉及KBC界面周围的局部高浓度反应区域。这项工作不仅为消除HA提供了一种经济有效的解决方案,而且还促进了我们对生物炭界面非自由基氧化的理解。
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来源期刊
Chinese Chemical Letters
Chinese Chemical Letters 化学-化学综合
CiteScore
14.10
自引率
15.40%
发文量
8969
审稿时长
1.6 months
期刊介绍: Chinese Chemical Letters (CCL) (ISSN 1001-8417) was founded in July 1990. The journal publishes preliminary accounts in the whole field of chemistry, including inorganic chemistry, organic chemistry, analytical chemistry, physical chemistry, polymer chemistry, applied chemistry, etc.Chinese Chemical Letters does not accept articles previously published or scheduled to be published. To verify originality, your article may be checked by the originality detection service CrossCheck.
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