Adsorption characteristics of Ag+ on sphalerite surface: a combined experimental and first-principle study

被引:0
作者
Heng Yu
Hongliang Zhang
Chenyang Zhang
Wei Sun
Mingjun Han
Rong Wang
Xin Wei
Songjiang Li
机构
[1] Central South University,School of Minerals Processing and Bioengineering
[2] State Key Laboratory of Complex Nonferrous Metal Resources Clean Utilization,undefined
[3] Suzhou Dongfang Environmental Engineering Co. LTD,undefined
[4] China Railway Resources Group Co. LTD,undefined
来源
Environmental Science and Pollution Research | 2024年 / 31卷
关键词
Wastewater; Silver; Sphalerite; Adsorption; DFT;
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中图分类号
学科分类号
摘要
The rapid development of industrial society is also accompanied by the generation of a large amount of heavy metal wastewater, which has caused serious harm to the ecological environment and human society. Natural sphalerite has an important value in the environmental field due to its own semiconducting properties. In order to effectively remove Ag+ from wastewater containing silver, this study develops a natural mineral-based Ag+ adsorbent material (sphalerite) based on elemental affinity qualities and mineralization principles. The results of batch experiments showed that the initial Ag+ concentration of 50 mg/L reduced to 0.094 mg/L with a reaction duration of 15 min, a sphalerite dose of 5 g/L, an initial particle size of −400 mesh (38 μm), a reaction temperature of 25 °C, and a pH of 5. The highest adsorption capacity is 19.77 mg/g, and the adsorption behavior is consistent with the Freundlich isotherm model and pseudo-second-order adsorption kinetics. The results of solution chemical analysis indicate that the presence of Ag+ is primarily influenced by the presence of S2−. Further analysis using SEM-EDS, FTIR, and XPS techniques reveals that Ag+ is chemically adsorb onto the mineral surface, resulting in the formation of Ag2S. DFT calculations further confirm the overlap between the Ag 4d orbitals and the S 3p orbitals on the surface of sphalerite, further confirming its chemical adsorption. Mulliken populations suggest that charge transfer occurs between Ag+ and S atoms in the sphalerite surface. This research systematically reveals the Ag+ adsorption mechanism on sphalerite surface and expands research ideas for treating heavy metal wastewater.
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页码:23822 / 23838
页数:16
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共 196 条
  • [1] Abbas KK(2019)Enhanced solar light photoreduction of innovative TiO2 nanospherical shell by reduced graphene oxide for removal silver ions from aqueous media J Environ Chem Eng 7 103168-1587
  • [2] Al-Ghaban AMHA(2022)Fluoride-contaminated water remediation using biochar derived from dairy processing sludge Chem Eng J 446 136955-342
  • [3] Abeysinghe S(2001)Silver(I) complexes with DNA and RNA studied by Fourier transform infrared spectroscopy and capillary electrophoresis Biophys J 81 1580-684
  • [4] Baek K(2014)Silver recovery from an effluent generated by plating industry using a rotating cylinder electrode (RCE) Electrochim Acta 147 337-1281
  • [5] Arakawa H(2010)The first-principle study of the effect of lattice impurity on adsorption of CN on sphalerite surface Miner Eng 23 676-5695
  • [6] Neault JF(2021)Steric hindrance effect on adsorption of xanthate on sphalerite surface: a DFT study Miner Eng 165 106834-511
  • [7] Tajmir-Riahi HA(2011)Photocatalytic inactivation of Escherichia coli by natural sphalerite suspension: effect of spectrum, wavelength and intensity of visible light Chemosphere 84 1276-266
  • [8] Arredondo JL(2011)Naturally occurring sphalerite as a novel cost-effective photocatalyst for bacterial disinfection under visible light Environ Sci Technol 45 5689-12585
  • [9] Rivera FF(2022)Wastewater irrigation: an opportunity for improving soil phosphorus availability; PHREEQC modeling and adsorption studies Sci Total Environ 851 158180-418
  • [10] Nava JL(2017)Inputs, dynamics and potential impacts of silver (Ag) from urban wastewater to a highly turbid estuary (SW France) Chemosphere 167 501-52