Influence of surfactants on bioleaching of arsenic-containing gold concentrate

被引:0
|
作者
Fang Fang
Hong Zhong
Fang-ming Jiang
Zhao-hui Li
Yong-fa Chen
Xue-hui Zhan
机构
[1] Central South University,School of Chemistry and Chemical Engineering
[2] Changsha University of Science and Technology,College of Chemistry and Biological Engineering
[3] Central South University,Key Laboratory of Resources Chemical of Nonferrous Metals of Ministry of Education
来源
关键词
arsenic-containing gold concentrate; surfactants; bioleaching;
D O I
暂无
中图分类号
学科分类号
摘要
To shorten the bioleaching cycle of arsenic-containing gold concentrate, surfactants were used to promote the interaction between bacteria and ore to increase the arsenic leaching rate. Three different kinds of surfactants were used to evaluate the effects of surfactants on the growth of bacteria and arsenic leaching rate of arsenic-containing gold concentrate. The mechanism underlying surfactant enhancement was also studied. Results show that when relatively low-concentration surfactants are added to the medium, no significant difference is observed in the growth and Fe2+ oxidation ability of the bacteria compared with no surfactant in the medium. However, only the anionic surfactant calcium lignosulfonate and the nonionic surfactant Tween 80 are found to improve the arsenic leaching rates. Their optimum mass concentrations are 30 and 80 mg/L, respectively. At such optimum mass concentrations, the arsenic leaching rates are approximately 13.7% and 9.1% higher than those without the addition of surfactant, respectively. Mechanism research reveals that adding the anionic surfactant calcium lignosulfonate improves the percentage of bacterial adhesion on the mineral surface and decreases the surface tension in the leaching solution.
引用
收藏
页码:3963 / 3969
页数:6
相关论文
共 50 条
  • [21] Arsenic-Containing Chalcophosphate Molecular Anions
    Morris, Collin D.
    Kanatzidis, Mercouri G.
    INORGANIC CHEMISTRY, 2010, 49 (19) : 9049 - 9054
  • [22] Arsinothricin: a novel arsenic-containing antibiotic
    Yoshinaga, M.
    Nadar, V. S.
    Chen, J.
    Dheeman, D. S.
    Rosen, B. P.
    Kuramata, M.
    Ishikawa, S.
    ENVIRONMENTAL ARSENIC IN A CHANGING WORLD (AS2018), 2018, : 319 - 321
  • [23] Facile access to arsenic-containing triacylglycerides
    Guttenberger, Nikolaus
    Sagmeister, Peter
    Glabonjat, Ronald A.
    Hirner, Stefan
    Francesconi, Kevin A.
    TETRAHEDRON LETTERS, 2017, 58 (04) : 362 - 364
  • [24] POLYMER ENCAPSULATION OF ARSENIC-CONTAINING WASTE
    CARTER, M
    BAKER, N
    BURFORD, RP
    JOURNAL OF APPLIED POLYMER SCIENCE, 1995, 58 (11) : 2039 - 2046
  • [25] CYCLIC ARSENIC-CONTAINING DERIVATIVES OF PENTAERYTHRITOL
    KAMEN, G
    CHADAEVA, NA
    JOURNAL OF GENERAL CHEMISTRY USSR, 1962, 32 (04): : 1106 - &
  • [26] Synthetic access to arsenic-containing phosphatidylcholines
    Guttenberger, Nikolaus
    Glabonjat, Ronald A.
    Tassoti, Sebastian
    Francesconi, Kevin A.
    TETRAHEDRON LETTERS, 2017, 58 (27) : 2651 - 2653
  • [27] Influence of agricultural amendments on arsenic biogeochemistry and phytotoxicity in a soil polluted by the destruction of arsenic-containing shells
    Battaglia-Brunet, Fabienne
    Le Guedard, Marina
    Faure, Olivier
    Charron, Mickael
    Hube, Daniel
    Devau, Nicolas
    Joulian, Catherine
    Thouin, Hugues
    Hellal, Jennifer
    JOURNAL OF HAZARDOUS MATERIALS, 2021, 409
  • [28] ARSENIC EXCRETION BY MONKEYS DOSED WITH ARSENIC-CONTAINING FISH OR WITH INORGANIC ARSENIC
    CHARBONNEAU, SM
    SPENCER, K
    BRYCE, F
    SANDI, E
    BULLETIN OF ENVIRONMENTAL CONTAMINATION AND TOXICOLOGY, 1978, 20 (04) : 470 - 477
  • [29] An Arsenic Removal Technology and Its Application in Arsenic-Containing Copper
    Tang, Xiaowei
    He, Yuehui
    CHEMENGINEERING, 2024, 8 (03)
  • [30] DETERMINATION OF BY PULSE POLAROGRAPHY OF TELLURIUM IN ARSENIC AND ARSENIC-CONTAINING PRODUCTS
    BELIKOVA, TE
    KAPLAN, BY
    SHIRYAEV.OA
    INDUSTRIAL LABORATORY, 1967, 33 (11): : 1551 - &