An integrated process incorporating pH-controlled biomineralization and sulfate bioreduction to facilitate recovery of schwertmannite and sulfated polysaccharides from acid mine drainage

被引:3
作者
Liu, Lanlan [1 ]
Li, Jingsai [1 ]
Su, Long [1 ]
Fang, Di [1 ]
Zhou, Lixiang [1 ]
机构
[1] Nanjing Agr Univ, Dept Environm Sci & Engn, Nanjing 210095, Peoples R China
基金
中国国家自然科学基金;
关键词
Acid mine drainage; Biomineralization; Schwertmannite; Biological sulfate reduction; Sulfated polysaccharides; REDUCTION; IRON; BIOOXIDATION; REMEDIATION; ANTITUMOR;
D O I
10.1016/j.cej.2024.150614
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Acid mine drainage (AMD) poses an environmental challenge to the global mining industry. However, it is also a potential source of iron and sulfate for recovery. In this work, we proposed an integrated process of pH-controlled biomineralization of iron and biological sulfate reduction to facilitate the concurrent purification of AMD and selective recovery of iron and sulfate as valuable products. Compared with the biomineralization controlling pH at 2.8, the modified biomineralization controlling pH at 3.2 improved the iron precipitation efficiency from 9.7 % to 95.3 %, leading to a 53-fold increase in pure-grade schwertmannite Fe8O8(OH)(4.08)(SO4)(1.96) production in AMD. This improvement may be related to the relatively low Gibbs free energy value of the Fe3+ mineralization reaction at pH 3.2. The solution equilibrium calculation using Visual MINTEQ indicated that keeping the system pH at an appropriate level is crucial for the spontaneous and effective biomineralization of Fe to schwertmannite at room temperature. The specific pH required for Fe biomineralization is slightly affected by the content of metal cations (e.g., Al3+, Ca2+, Mg2+, Cu2+, and Mn2+) and oxoanion (AsO33-/AsO43-) in AMD but greatly affected by sulfate content (mM) (pH = 0.149 ln c(SO42-) + 2.551). For the effluent resulting from AMD biomineralization, sulfate reduction at pH 5.0 removed residual Zn2+ (99.9 %), Mn2+ (97 %), Cu2+ (100 %), and sulfate (87.1 %) while recovering sulfated polysaccharides with antiangiogenic bioactivity (as confirmed by the chorioallantoic membrane tests). The pilot-scale continuous flow operation experiments demonstrated that this integrated method has the potential to recover valuable iron/sulfate products from AMD.
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页数:9
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共 36 条
  • [1] Advance research in biomedical applications on marine sulfated polysaccharide
    Arokiarajan, Mary Shamya
    Thirunavukkarasu, Rajasekar
    Joseph, Jerrine
    Ekaterina, Obluchinskaya
    Aruni, Wilson
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2022, 194 : 870 - 881
  • [2] Baird R.B., 2017, Standard methods for the examination of water and wastewater
  • [3] Schwertmannite and the chemical modeling of iron in acid sulfate waters
    Bigham, JM
    Schwertmann, U
    Traina, SJ
    Winland, RL
    Wolf, M
    [J]. GEOCHIMICA ET COSMOCHIMICA ACTA, 1996, 60 (12) : 2111 - 2121
  • [4] Metastability, nanocrystallinity and pseudo-solid solution effects on the understanding of schwertmannite solubility
    Caraballo, Manuel A.
    Rimstidt, J. Donald
    Macias, Francisco
    Miguel Nieto, Jose
    Hochella, Michael F., Jr.
    [J]. CHEMICAL GEOLOGY, 2013, 360 : 22 - 31
  • [5] Marine Polysaccharides from Algae with Potential Biomedical Applications
    de Jesus Raposo, Maria Filomena
    Bernardo de Morais, Alcina Maria
    Santos Costa de Morais, Rui Manuel
    [J]. MARINE DRUGS, 2015, 13 (05) : 2967 - 3028
  • [6] Chromate and phosphate adsorption on schwertmannite: Competition, mobilization and mechanisms
    Fan, Cong
    Guo, Chuling
    Chen, Wei
    Tao, Lu
    Yao, Qian
    Lu, Guining
    Shen, Yu
    Dang, Zhi
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2023, 658
  • [7] Acidithiobacillus ferrooxidans mediates morphology evolution of schwertmannite in the presence of Fe2+
    Feng, Kun
    Wang, Xiaomeng
    Ding, Baoting
    Xu, Min
    Liang, Jianru
    Zhou, Lixiang
    [J]. CHEMICAL GEOLOGY, 2022, 598
  • [8] Sulfur Reduction in Acid Rock Drainage Environments
    Florentino, Anna P.
    Weijma, Jan
    Stams, Alfons J. M.
    Sanchez-Andrea, Irene
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (19) : 11746 - 11755
  • [9] Monovalent cation concentrations determine the types of Fe(III) hydroxysulfate precipitates formed in bioleach solutions
    Gramp, Jonathan P.
    Jones, F. Sandy
    Bigham, Jerry M.
    Tuovinen, Olli H.
    [J]. HYDROMETALLURGY, 2008, 94 (1-4) : 29 - 33
  • [10] Microbial communities and biosynthetic pathways for the production of sulfated polysaccharides in the activated sludge system
    Hao, Tianwei
    Xue, Weiqi
    Zeng, Qian
    Liu, Rulong
    Chen, Guanghao
    [J]. SCIENCE OF THE TOTAL ENVIRONMENT, 2022, 850