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Adsorption characteristics of silver atoms and silver ions on silica surface in silver nanoparticle hydrosol system

机译:银纳米粒子水溶液中银原子和银离子的吸附特性

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摘要

Previous studies have demonstrated that silver ions (Ag+) can be released from silver nanoparticles (AgNPs) to produce a system of silver atoms (Ag0) and Ag+ in equilibrium, which may affect the environment through adsorption on sediment. Here, the adsorption behaviour of Ag0 and Ag+ in a AgNP hydrosol system on a silica surface was systematically investigated using experimental evaluation and first-principles calculations based on density functional theory. The adsorption environment and performance were first analysed by batch and fixedbed experiments, which indicated that less adsorption occurred between silica and silver. Subsequent energy calculations and structural optimisation revealed that both Ag0 and Ag+ were more likely to be chemisorbed on the silica surface through covalent (Ag-O) bonds. The average adsorption energies of SiO2/Ag+ and SiO2/Ag0 were -5.445 and -3.61 eV, respectively. In addition, Ag0 lost an average of 0.86 electrons to the O4-silica bond. By contrast, only a few electrons, which bonded with O1, were transferred from silica to Ag+. Analyses of the density of states and crystal orbital Hamilton population revealed that O and Ag were hybridised with the 2p-4d orbitals after adsorption. In addition, the peak shifts in the high-resolution Ag 3d, O 1s and Si 2p X-ray photoelectron spectra after adsorption revealed changes in the chemical state. The presence of Ag-O bonds was confirmed by the surface-enhanced Raman scattering spectrum. Silica was selected as the main component of sediment in this study, and it is hoped that this work will motivate a simulation of the migration and transformation of silver by sediment in the water environment.
机译:以前的研究表明,银离子(Ag +)可以从银纳米颗粒(AgNP)中释放,以在平衡中产生银原子(Ag0)和Ag +的系统,这可能通过沉积物的吸附来影响环境。这里,系统地研究了基于密度函数理论的实验评价和第一原理计算,系统地研究了AgNP水溶液系统中Ag0和Ag +的吸附行为。首先通过分批和固定的实验分析吸附环境和性能,表明二氧化硅和银之间发生较少的吸附。随后的能量计算和结构优化表明,AG0和Ag +更可能通过共价(Ag-O)键在二氧化硅表面上化学吸附。 SiO2 / Ag +和SiO2 / Ag0的平均吸附能量分别为-5.445和-3.61eV。另外,AG0对O4二氧化硅键的平均值为0.86个电子。相反,只有少数电子与O1粘合,从二氧化硅转移到Ag +。分析的状态和水晶轨道汉密尔顿人群的密度显示,在吸附后,o和Ag与2p-4d轨道杂交。另外,在吸附后,在高分辨率Ag 3D,O 1S和Si 2P X射线光电子光谱中显示出在化学状态下的变化之后,峰值偏移。通过表面增强的拉曼散射光谱证实了AG-O键的存在。选择二氧化硅作为本研究中的沉积物的主要成分,希望这项工作能够通过水环境中的沉积物来刺激沉积物的迁移和转化。

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  • 来源
    《Applied Surface Science 》 |2021年第1期| 150168.1-150168.9| 共9页
  • 作者单位

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Coll Sci Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

    Northeastern Univ Sch Resources & Civil Engn Shenyang 110819 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Adsorption characteristics; Silver atoms; Silver ions; DFT calculation;

    机译:吸附特性;银原子;银离子;DFT计算;

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