Arsenopyrite weathering in acidic water: Humic acid affection and arsenic transformation

被引:34
|
作者
Wang, Shuai [1 ,2 ]
Zheng, Kai [1 ,2 ]
Li, Heping [1 ]
Feng, Xiaonan [1 ,2 ]
Wang, Luying [1 ]
Liu, Qingyou [1 ]
机构
[1] Chinese Acad Sci, Inst Geochem, Key Lab High Temp & High Pressure Study Earths In, Guiyang 550081, Peoples R China
[2] Univ Chinese Acad Sci, Beijing 100039, Peoples R China
基金
中国国家自然科学基金;
关键词
Arsenopyrite; Humic acid; Electrochemical techniques; Speciation transformation; Arsenic transformation; ELECTROCHEMICAL OXIDATION; PRESSURE OXIDATION; ORGANIC-MATTER; TAFEL SLOPES; PYRITE; SURFACE; SPECTROSCOPY; DISSOLUTION; SULFIDE; STOICHIOMETRY;
D O I
10.1016/j.watres.2021.116917
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Arsenopyrite is a common metal sulfide mineral and weathers readily in the open environment, releases As, and pollutes the surrounding environment. Humic acid (HA) is ubiquitous in soils, sediments and waters, and contains various functional groups and complex with arsenic, iron and other metal ions that affect the weathering behavior of arsenopyrite. Because As, iron, and HA are redox-active compounds, electrochemical techniques, including polarization curves, electrochemical impedance spectroscopy (EIS), and cyclic voltammetry (CV), were used to fundamentally investigate the weathering process and mechanism of arsenopyrite over a wide range of environmental relevant conditions. Polarization curves showed higher HA concentrations (0-100 0 mg center dot L-1), higher temperatures (5-35 degrees C) or acidities (pH 1.0-7.0) promoted arsenopyrite weathering; there was a linear relationship between the corrosion current density (icorr), temperature (T) and acidity (pH): i(corr) =-3691.2/T + 13.942 and i(corr) =-0.24 45pH + 2.2125, respectively. Arsenopyrite weathering readily occurred in the presence of HA as confirmed by its activation energy of 24.1 kJ center dot mol(-1), and EIS measurements confirmed that the kinetics were controlled by surface reaction as confirmed by decreased double layer resistance. CV and surface characterization (FTIR and XPS) showed that arsenopyrite initially oxidized to S-0 , As(III) and Fe2+, then S-0 and Fe2+ were ultimately converted into SO42- and Fe3+, while As(III) oxidized to As(V). Furthermore, the carboxyl (-COOH) and phenolic (-OH) of HA could bind with As(III)/(V) and Fe3+ via a ligand exchange mechanism forming As(III)/(V)-HA and As(III)/(V)-Fe-HA complexes that hinders the formation of FeAsO4 and decreases the bioavailability of As. Findings gained from this study are valuable for the understanding of the fate and transport of As in acidic conditions, and have powerful implications for the remediation and management of As-bearing sites affected by mining activities. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Antimony(V) removal from water within ferrihydrite transformation: Influence of humic acid
    Liu, Xiaoyun
    Xiang, Hongrui
    Zhang, Wenchao
    Wang, Haiying
    Ke, Yong
    Wang, Qingwei
    Yan, Xu
    Wang, Yunyan
    Liang, Yanjie
    Lin, Zhang
    JOURNAL OF HAZARDOUS MATERIALS ADVANCES, 2023, 11
  • [22] Enhanced arsenic migration in tailings soil with the addition of humic acid, fulvic acid and thiol-modified humic acid
    Qian, Guangren
    Xu, Lu
    Li, Nuo
    Wang, Kaili
    Qu, Yangwei
    Xu, Yunfeng
    CHEMOSPHERE, 2022, 286
  • [23] Arsenopyrite-water interface chemistry: Roles of iron (hydr)oxides in arsenic mobility
    June, Young-Shin
    Neil, Chelsea
    Wu, Xuanhao
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2017, 253
  • [24] ROLE OF MICROORGANISMS IN HUMIC-ACID TRANSFORMATION
    GORDIENKO, SA
    KUNZ, F
    SOVIET JOURNAL OF ECOLOGY, 1984, 15 (02) : 90 - 95
  • [25] Compounding Pattern of REE, Clay and Humic Acid in the Weathering Crust of Granites
    陈炳辉
    陈志澄
    梁群优
    符群策
    俞受鋆
    张丽洁
    JOURNALOFRAREEARTHS, 1996, (01) : 47 - 53
  • [26] Geochemical processes in acidic water caused by the weathering of metal sulphides
    Asta Andres, M. P.
    Acero Salazar, P.
    Auque Sanz, L. F.
    Gimeno Serrano, M. J.
    Gomez Jimenez, J. B.
    BOLETIN GEOLOGICO Y MINERO, 2011, 122 (02): : 259 - 271
  • [27] Response surface methodology investigation into the interactions between arsenic and humic acid in water during the coagulation process
    Watson, Malcolm Alexander
    Tubic, Aleksandra
    Agbaba, Jasmina
    Nikic, Jasmina
    Maletic, Snezana
    Jazic, Jelena Molnar
    Dalmacija, Bozo
    JOURNAL OF HAZARDOUS MATERIALS, 2016, 312 : 150 - 158
  • [28] Compounding pattern of REE, clay and humic acid in the weathering crust of granites
    Chen, BH
    Chen, ZC
    Liang, QY
    Fu, QC
    Yu, SJ
    Zhang, LJ
    JOURNAL OF RARE EARTHS, 1996, 14 (01) : 47 - 53
  • [29] Adsorption of arsenic (V) on kaolinite and on kaolinite-humic acid complexes - Role of humic acid nitrogen groups
    Saada, A
    Breeze, D
    Crouzet, C
    Cornu, S
    Baranger, P
    CHEMOSPHERE, 2003, 51 (08) : 757 - 763
  • [30] ROS formation driven by pyrite-mediated arsenopyrite oxidation and its potential role on arsenic transformation
    Zhou, Shuang
    Gan, Min
    Wang, Xingxing
    Zhang, Yisheng
    Fang, Yingchun
    Gu, Guohua
    Wang, Yanhong
    Qiu, Guanzhou
    JOURNAL OF HAZARDOUS MATERIALS, 2023, 443