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光照下酚类 DOM 离子还原 Ag(+)过程中 Ag(0)单原子在水/矿物界面的累积

Accumulation of Ag(0) Single Atoms at Water/Mineral Interfaces during Sunlight-Induced Reduction of Ionic Ag by Phenolic DOM.

机构信息

Key Lab for Colloid and Interface Science of Ministry of Education, School of Chemistry and Chemical Engineering, State Key Laboratory of Crystal Materials, Shandong University, Jinan 250100, China.

Shandong Key Laboratory of Environmental Processes and Health, School of Environmental Science and Engineering, Shandong University, Qingdao 266237, China.

出版信息

Environ Sci Technol. 2023 Dec 12;57(49):20822-20829. doi: 10.1021/acs.est.3c05922. Epub 2023 Nov 28.

Abstract

Silver (Ag) undergoes a complex and dynamic Ag/Ag cycle under environmental conditions. The Ag → Ag nanoparticles (AgNPs) transformation due to the combined actions of sunlight, O, and dissolved organic matter has been a well-known environmental phenomenon. In this study, we indicate that this process may be accompanied by a pronounced accumulation of Ag(0) single atoms (Ag-SAs) on the minerals' surfaces. According to spherical aberration-corrected scanning transmission electron microscopy and high-energy-resolution X-ray adsorption fine structure analyses, humic acid (HA) and phenol (PhOH) can induce Ag-SAs accumulation, whereas oxalic acid causes only AgNPs deposition. Ag-SAs account for more than 20 wt % of total Ag(0) on the γ-AlO surfaces during HA- and PhOH-mediated photolysis processes. HA also causes Ag-SAs to accumulate on two other prevalent soil minerals, SiO and FeO, and the fractions of Ag-SAs are about 15 wt %. Our mechanism studies suggest that a phenolic molecule acts as a reducing agent of Ag and a stabilizer of Ag-SAs, protecting Ag-SAs against autocatalytic nucleation.

摘要

银(Ag)在环境条件下经历复杂而动态的 Ag/Ag 循环。由于阳光、O 和溶解有机物的共同作用,Ag→Ag 纳米颗粒(AgNPs)的转化是众所周知的环境现象。在这项研究中,我们表明,这个过程可能伴随着矿物质表面上 Ag(0)单原子(Ag-SAs)的明显积累。根据球差校正扫描透射电子显微镜和高能分辨率 X 射线吸收精细结构分析,腐殖酸(HA)和苯酚(PhOH)可以诱导 Ag-SAs 积累,而草酸仅导致 AgNPs 沉积。在 HA 和 PhOH 介导的光解过程中,Ag-SAs 占 γ-AlO 表面总 Ag(0)的 20wt%以上。HA 还导致 Ag-SAs 在另外两种常见的土壤矿物质 SiO 和 FeO 上积累,Ag-SAs 的分数约为 15wt%。我们的机理研究表明,酚类分子是 Ag 的还原剂和 Ag-SAs 的稳定剂,保护 Ag-SAs 免受自催化成核。

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