Transformation of jarosite during simulated remediation of a sandy sulfuric soil

被引:19
|
作者
Kolbl, Angelika [1 ]
Kaiser, Klaus [1 ]
Winkler, Pauline [1 ]
Mosley, Luke [2 ]
Fitzpatrick, Rob [2 ]
Marschner, Petra [3 ]
Wagner, Friedrich E. [4 ]
Haeusler, Werner [5 ]
Mikutta, Robert [1 ]
机构
[1] Martin Luther Univ Halle Wittenberg, Soil Sci & Soil Protect, D-06120 Halle, Saale, Germany
[2] Univ Adelaide, Acid Sulfate Soils Ctr, Adelaide, SA 5064, Australia
[3] Univ Adelaide, Sch Agr Food & Wine, Adelaide, SA 5005, Australia
[4] Tech Univ Munich, Phys Dept, D-85747 Garching, Germany
[5] Tech Univ Munich, Lehrstuhl Bodenkunde, D-85350 Freising Weihenstephan, Germany
基金
澳大利亚研究理事会;
关键词
Acid sulfate soil; Anoxic incubation; Organic matter addition; Fe-oxyhydroxides; Fe2+/Fe3+-organic matter associates; ACID SULFATE SOILS; INFLUENCES PH CHANGES; ORGANIC-MATTER; DISSOLUTION RATES; IRON; REDUCTION; SCHWERTMANNITE; CONSUMPTION; ANTIMONY; BEHAVIOR;
D O I
10.1016/j.scitotenv.2021.145546
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Aeration ofwetland soils containing iron (Fe) sulfides can cause strong acidification due to the generation of large amounts of sulfuric acid and formation of Fe oxyhydroxy sulfate phases such as jarosite. Remediation by re-establishment of anoxic conditions promotes jarosite transformation to Fe oxyhydroxides and/or Fe sulfides, but the driving conditions and mechanisms are largely unresolved. We investigated a sandy, jarosite-containing soil (initial pH = 3.0, Eh similar to 600 mV) in a laboratory incubation experiment under submerged conditions, either with or without wheat straw addition. Additionally, a model soil composed of synthesized jarosite mixed with quartz sand was used. Eh and pH values were monitored weekly. Solution concentrations of total dissolved organic carbon, Fe, S, and K as well as proportions of Fe2+ and SO42- were analysed at the end of the experiment. Sequential Fe extraction, X-ray diffraction, and Mossbauer spectroscopy were used to characterize the mineral composition of the soils. Only when straw was added to natural and artificial sulfuric soils, the pH increased up to 6.5, and Eh decreased to approx. 0 mV. The release of Fe (mainly Fe2+), K, and S (mainly SO42-) into the soil solution indicated redox- and pH-induced dissolution of jarosite. Mineralogical analyses confirmed jarosite losses in both soils. While lepidocrocite formed in the natural sulfuric soil, goethite was formed in the artificial sulfuric soil. Both soils showed also increases in non-sulfidized, probably organically associated Fe2+/Fe3+, but no (re-)formation of Fe sulfides. Unlike Fe sulfides, the formed Fe oxyhydroxides are not prone to support re-acidification in the case of future aeration. Thus, inducing moderately reductive conditions by controlled supply of organic matter could be a promising way for remediation of soils and sediments acidified by oxidation of sulfuric materials. (C) 2021 Elsevier B.V. All rights reserved.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Consumption and alteration of different organic matter sources during remediation of a sandy sulfuric soil
    Koelbl, Angelika
    Bucka, Franziska
    Marschner, Petra
    Mosley, Luke
    Fitzpatrick, Rob
    Schulz, Stefanie
    Lueders, Tillmann
    Koegel-Knabner, Ingrid
    GEODERMA, 2019, 347 : 220 - 232
  • [2] Rapid remediation of sandy sulfuric subsoils using straw-derived dissolved organic matter
    Kolbl, Angelika
    Kaiser, Klaus
    Thompson, Aaron
    Mosley, Luke
    Fitzpatrick, Rob
    Marschner, Petra
    Sauheitl, Leopold
    Mikutta, Robert
    GEODERMA, 2022, 420
  • [3] Arsenic behavior during gallic acid-induced redox transformation of jarosite under acidic conditions
    Tang, Yuanjun
    Xie, Yingying
    Lu, Guining
    Ye, Han
    Dang, Zhi
    Wen, Zining
    Tao, Xueqin
    Xie, Chunsheng
    Yi, Xiaoyun
    CHEMOSPHERE, 2020, 255
  • [4] Stability and transformation of jarosite and Al-substituted jarosite in an acid sulfate paddy soil under laboratory and field conditions
    Grigg, Andrew R. C.
    Wisawapipat, Worachart
    Barmettler, Kurt
    Schulz, Katrin
    Notini, Luiza
    Thomasarrigo, Laurel K.
    Kretzschmar, Ruben
    GEOCHIMICA ET COSMOCHIMICA ACTA, 2024, 382 : 128 - 141
  • [5] Addition of clayey soils with high net negative acidity to sulfuric sandy soil can minimise pH changes during wet and dry periods
    Jayalath, N.
    Mosley, L. M.
    Fitzpatrick, R. W.
    Marschner, P.
    GEODERMA, 2016, 269 : 153 - 159
  • [6] Composition and dissolution kinetics of jarosite-rich segregations extracted from an acid sulfate soil with sulfuric material
    Trueman, A. M.
    McLaughlin, M. J.
    Mosley, L. M.
    Fitzpatrick, R. W.
    CHEMICAL GEOLOGY, 2020, 543
  • [7] Fate of oxalic-acid-intervened arsenic during Fe(II) induced transformation of As(V)-bearing jarosite
    Jin, Xiaohu
    Li, Xiaofei
    Guo, Chuling
    Jiang, Mengge
    Yao, Qian
    Lu, Guining
    Dang, Zhi
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 719
  • [8] Uranium Repartitioning during Microbial Driven Reductive Transformation of U(VI)-Sorbed Schwertmannite and Jarosite
    Yu, Changxun
    Johnson, Anders
    Karlsson, Andreas
    Chernikov, Roman
    Sjoberg, Viktor
    Song, Zhaoliang
    Dopson, Mark
    Astrom, Mats E.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2024, 58 (41) : 18324 - 18334
  • [9] Antimony and Arsenic Behavior during Fe(II)-Induced Transformation of Jarosite
    Karimian, Niloofar
    Johnston, Scott G.
    Burton, Edward D.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2017, 51 (08) : 4259 - 4268
  • [10] Divergent repartitioning of antimony and arsenic during jarosite transformation: A comparative study under aerobic and anaerobic conditions
    Jin, Xiaohu
    Huang, Qi
    Li, Xiaofei
    Lu, Guining
    Yao, Qian
    Xu, Fengjia
    Guo, Chuling
    Dang, Zhi
    SCIENCE OF THE TOTAL ENVIRONMENT, 2023, 898