Thallium(I) sequestration by jarosite and birnessite: Structural incorporation vs surface adsorption

被引:44
作者
Aguilar-Carrillo, J. [1 ]
Herrera-Garcia, L. [2 ]
Reyes-Dominguez, Ivan A. [3 ]
Gutierrez, Emmanuel J. [4 ]
机构
[1] UASLP, Inst Met, Dept Environm Technol, CONACyT, San Luis Potosi 78210, San Luis Potosi, Mexico
[2] UASLP, Inst Met, Dept Environm Technol, San Luis Potosi 78210, San Luis Potosi, Mexico
[3] UASLP, Inst Met, Dept Mineral Proc, CONACyT, San Luis Potosi 78210, Slp, Mexico
[4] UASLP, Inst Met, Dept Mat Engn, CONACyT, San Luis Potosi 78210, Slp, Mexico
关键词
Thallium; Jarosite; Birnessite; Surface sorption; Structural incorporation; Avicennite; Dorallcharite; AQUEOUS-SOLUTIONS; SORPTION BEHAVIOR; STREAM SEDIMENTS; OXIDATION-STATE; SOLID-SOLUTION; HEAVY-METALS; REMOVAL; SOILS; POLLUTION; ALUNITE;
D O I
10.1016/j.envpol.2019.113492
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Jarosite and birnessite secondary minerals play a pivotal role in the mobility, transport and fate of trace elements in the environment, although geochemical interactions of these compounds with extremely toxic thallium (Tl) remain poorly known. In this study, we investigated the sorption behavior of Tl(I) onto synthetic jarosite and birnessite, two minerals commonly found in soils and sediments as well as in mining-impacted areas where harsh conditions are involved. To achieve this, sorption and desorption experiments were carried out under two different acidic conditions and various Tl(I) concentrations to mimic natural scenarios. In addition, X-ray diffraction (XRD), Fourier-transform infrared spectroscopy (FTIR), scanning electron microscopy (SEM) and inductively coupled plasma (ICP) analyses were conducted to determine the performance of both minerals for Tl(I) sequestration. Our results indicate that both phases can effectively remove aqueous Tl by different sorption mechanisms. Jarosite preferentially incorporates Tl(I) into the structure to form Tl(I)-jarosite and eventually the mineral dorallcharite (TlFe3(SO4)(2)(OH)(6)) as increasing amounts of Tl are employed. Birnessite, however, favorably uptakes Tl(I) through an irreversible surface adsorption mechanism, underlining the affinity of Tl for this mineral in the entire concentration range studied (0.5-5 mmol L-1). Lastly, the presence of Tl(I) in conditions where aqueous molar ratio Tl/Mn is similar to 0.25 inhibits the formation of birnessite since oxidation of Tl(I) to Tl(III) followed by precipitation of avicennite (Tl2O3) take place. Thus, the present research may provide useful insights on the role of both jarosite and birnessite minerals in Tl environmental cycles. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:11
相关论文
共 87 条
  • [41] Kabata-Pendias A., 2011, Trace Elements in Soil and Plants, V4th
  • [42] Presence of thallium in the environment: sources of contaminations, distribution and monitoring methods
    Karbowska, Bozena
    [J]. ENVIRONMENTAL MONITORING AND ASSESSMENT, 2016, 188 (11)
  • [43] Translocation and mobility of thallium from zinc-lead ores
    Karbowska, Bozena
    Zembrzuski, Wlodzimierz
    Jakubowska, Monika
    Wojtkowiak, Tomasz
    Pasieczna, Anna
    Lukaszewski, Zenon
    [J]. JOURNAL OF GEOCHEMICAL EXPLORATION, 2014, 143 : 127 - 135
  • [44] GENERAL-PURPOSE ADSORPTION-ISOTHERMS
    KINNIBURGH, DG
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1986, 20 (09) : 895 - 904
  • [45] Kolitsch U., 2001, J MINER PETROL SCI, V96, P67, DOI DOI 10.2465/jmps.96.67
  • [46] Structural study of the incorporation of heavy metals into solid phase formed during the oxidation of EDTA by permanganate at high pH
    Korshin, Gregory V.
    Chang, Hyun-Shik
    Frenkel, Anatoly I.
    Ferguson, John F.
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2007, 41 (07) : 2560 - 2565
  • [47] Biochar derived from watermelon rinds as regenerable adsorbent for efficient removal of thallium(I) from wastewater
    Li, Huosheng
    Xiong, Jingfang
    Xiao, Tangfu
    Long, Jianyou
    Wang, Qimin
    Li, Keke
    Liu, Ximing
    Zhang, Gaosheng
    Zhang, Hongguo
    [J]. PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2019, 127 : 257 - 266
  • [48] Removal and recovery of thallium from aqueous solutions via a magnetite-mediated reversible adsorption-desorption process
    Li, Huosheng
    Li, Xiuwan
    Chen, Yongheng
    Long, Jianyou
    Zhang, Gaosheng
    Xiao, Tangfu
    Zhang, Ping
    Li, Changlin
    Zhuang, Lingzhi
    Huang, Wenyu
    [J]. JOURNAL OF CLEANER PRODUCTION, 2018, 199 : 705 - 715
  • [49] Removal of thallium from aqueous solutions using Fe-Mn binary oxides
    Li, Huosheng
    Chen, Yongheng
    Long, Jianyou
    Li, Xiuwan
    Jiang, Daqian
    Zhang, Ping
    Qi, Jianying
    Huang, Xuexia
    Liu, Juan
    Xu, Ruibing
    Gong, Jian
    [J]. JOURNAL OF HAZARDOUS MATERIALS, 2017, 338 : 296 - 305
  • [50] Sorption isotherms:: A review on physical bases, modeling and measurement
    Limousin, G.
    Gaudet, J. -P.
    Charlet, L.
    Szenknect, S.
    Barthes, V.
    Krimissa, M.
    [J]. APPLIED GEOCHEMISTRY, 2007, 22 (02) : 249 - 275