The role of nitrogen and sulfur doping in the peroxymonosulfate activation of cobalt-immobilized Polygonatum kingianum dregs biochar

IF 5.6 1区 农林科学 Q1 AGRICULTURAL ENGINEERING
Fali Hou , Jinli Zhai , Jiali Yan , Kaiying Yang , Wei Li , Min Li , Weimei Yu , Xiaoya Gao , Xingxin Yang
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Abstract

Biomass wastes from agriculture are very important sources to fabricate high-value materials for water purification. Herein, we encapsulated cobalt inside Polygonatum kingianum (PK) dregs biochar with no doping and the doping of N, S, and N-S to investigate the roles of Co/N/S in promoting the catalytic activity on activating peroxymonosulfate (PMS) to degrade emerging pollutant. Cobalt nanoparticles were evenly wrapped in the carbon matrix by N doping, leading to no apparent cobalt nanoparticles in Co@BC-N and presenting a poorer activity. Additionally, Co was converted to Co9S8 (Co@BC-S) and Co4S3 (Co@BC-N,S) by S doping and N-S co-doping, respectively. Particularly, both the experiments and DFT calculations revealed an outstanding synergistic effect between Co4S3 and the N-S co-modified carbon matrix, which significantly raised the adsorption of PMS and activated it into non-radical (1O2 and electron transfer) and radical pathways (SO4•−, •OH, and O2•−). The Co@BC-N,S/PMS system completely degraded carbamazepine (CBZ) within 20 min, with an apparent rate constant (kapp) of 2.7, 16.0, and 19.6 times higher than that of Co@BC-S, Co@BC, and Co@BC-N, respectively. Furthermore, this system exhibited good tolerance to environmental matrix, great effectiveness in actual water body, and high degradation efficiency of CBZ in five cycles. Overall, this work not only bridged the knowledge gap of the connections between structural properties of the modified Co@BC hybrid and catalytic performance, but also introduced a new view for utilization of PK dregs in catalytic decontamination.

Abstract Image

氮和硫掺杂在钴固定化黄精渣生物炭过氧单硫酸盐活化中的作用
农业生物质废弃物是制造高价值净水材料的重要来源。在此,我们将钴封装在未掺杂和掺杂 N、S 和 N-S 的王不留行(Polygonatum kingianum,PK)渣生物炭中,以研究 Co/N/S 在促进活化过一硫酸盐(PMS)的催化活性以降解新污染物中的作用。通过 N 掺杂,钴纳米颗粒被均匀地包裹在碳基质中,导致 Co@BC-N 中没有明显的钴纳米颗粒,活性较差。此外,通过 S 掺杂和 N-S 共掺杂,钴分别转化为 Co9S8(Co@BC-S)和 Co4S3(Co@BC-N,S)。实验和 DFT 计算均表明,Co4S3 与 N-S 共修饰碳基质之间具有突出的协同效应,可显著提高对 PMS 的吸附,并将其活化为非自由基途径(1O2 和电子转移)和自由基途径(SO4--、-OH 和 O2--)。Co@BC-N,S/PMS体系能在20分钟内完全降解卡马西平(CBZ),其表观速率常数(kapp)分别是Co@BC-S、Co@BC和Co@BC-N的2.7倍、16.0倍和19.6倍。此外,该系统对环境基质具有良好的耐受性,在实际水体中具有很高的有效性,并且在五个循环中对 CBZ 具有很高的降解效率。总之,这项工作不仅填补了改性 Co@BC 杂化物结构特性与催化性能之间关系的知识空白,而且为利用 PK 废渣进行催化净化提出了新的观点。
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来源期刊
Industrial Crops and Products
Industrial Crops and Products 农林科学-农业工程
CiteScore
9.50
自引率
8.50%
发文量
1518
审稿时长
43 days
期刊介绍: Industrial Crops and Products is an International Journal publishing academic and industrial research on industrial (defined as non-food/non-feed) crops and products. Papers concern both crop-oriented and bio-based materials from crops-oriented research, and should be of interest to an international audience, hypothesis driven, and where comparisons are made statistics performed.
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