Biomining of iron-containing nanoparticles from coal tailings

被引:0
|
作者
Danielle Maass
Morgana de Medeiros Machado
Beatriz Cesa Rovaris
Adriano Michael Bernardin
Débora de Oliveira
Dachamir Hotza
机构
[1] Federal University of São Paulo (UNIFESP),Institute of Science and Technology (ICT)
[2] Federal University of Santa Catarina (UFSC),Department of Chemical and Food Engineering (EQA)
[3] Universidade do Extremo Sul de Santa Catarina (UNESC),Department of Materials Engineering (PPGCEM)
来源
关键词
Biomining; Coal tailings; Iron sulfate nanoparticle; Sulfur minerals;
D O I
暂无
中图分类号
学科分类号
摘要
Sulfur minerals originating from coal mining represent an important environmental problem. Turning these wastes into value-added by-products can be an interesting alternative. Biotransformation of coal tailings into iron-containing nanoparticles using Rhodococcus erythropolis ATCC 4277 free cells was studied. The influence of culture conditions (stirring rate, biomass concentration, and coal tailings ratio) in the particle size was investigated using a 23 full factorial design. Statistical analysis revealed that higher concentrations of biomass produced larger sized particles. Conversely, a more intense stirring rate of the culture medium and a higher coal tailings ratio (% w/w) led to the synthesis of smaller particles. Thus, the culture conditions that produced smaller particles (< 50 nm) were 0.5 abs of normalized biomass concentration, 150 rpm of stirring rate, and 2.5% w/w of coal tailings ratio. Composition analyses showed that the biosynthesized nanoparticles are formed by iron sulfate. Conversion ratio of the coal tailings into iron-containing nanoparticles reached 19%. The proposed biosynthesis process, using R. erythropolis ATCC 4277 free cells, seems to be a new and environmentally friendly alternative for sulfur minerals reuse.
引用
收藏
页码:7231 / 7240
页数:9
相关论文
共 50 条
  • [31] Hydrogenation of Brown Coal n the Presence of Highly Dispersed Iron-containing Catalysts
    Sharypov, Victor I.
    Beregovtsova, Natalia G.
    Baryshnikov, Sergei V.
    Zhyzhaev, Anatoly M.
    Kuznetsov, Boris N.
    JOURNAL OF SIBERIAN FEDERAL UNIVERSITY-CHEMISTRY, 2011, 4 (04): : 319 - 328
  • [32] Chlorination of Iron-Containing Nitrided Ilmenite Prepared by Carbothermal Process with Polystyrene and Coal
    Ahmadi, E.
    Alis, F. Amali
    Fauzi, M. N. Ahmad
    Baharun, N.
    Hussin, H.
    Ariffin, K. S.
    Ramakrishnan, S.
    Rezan, S. A.
    REGIONAL CONFERENCE ON MATERIALS AND ASEAN MICROSCOPY CONFERENCE 2017 (RCM & AMC 2017), 2018, 1082
  • [33] TRANSFORMATION OF THE IRON-CONTAINING COMPONENTS OF BROWN COAL IN THE PROCESS OF SPONTANEOUS COMBUSTION.
    Voitkovskii, Yu.B.
    Aleksandrov, I.V.
    Kamneva, A.I.
    Solid Fuel Chemistry, 1984, 18 (02) : 14 - 18
  • [34] Simulation of the kinetics of iron-containing mineral phases during pulverized coal combustion
    Bozic, O
    Leithner, R
    Brösdorf, B
    MODELLING AND SIMULATION OF STEAM GENERATORS AND FIRING SYSTEMS, 2000, 1534 : 129 - 142
  • [35] Iron-containing enamel coatings
    Vezentsev, A.I.
    Vernidubov, I.G.
    Pakhlevonyan, G.V.
    Tarasova, I.D.
    Steklo i Keramika, 1993, (11-12): : 32 - 34
  • [36] Crystallization of iron-containing zeolites
    Vosmerikov, A.V.
    Korobitsyna, L.L.
    Arbuzova, N.V.
    Radomskaya, V.I.
    Zhurnal Neorganicheskoj Khimii, 2002, 47 (11): : 1873 - 1877
  • [37] Formation of iron-containing composites
    Petkevich, A. V.
    Abakshonok, A. V.
    Agabekov, V. E.
    Eryomin, A. N.
    Semashko, T. V.
    Mikhailova, R. V.
    RUSSIAN JOURNAL OF GENERAL CHEMISTRY, 2016, 86 (10) : 2385 - 2393
  • [38] Iron-containing atmospheric aerosols
    Kopcewicz, B
    Kopcewicz, M
    HYPERFINE INTERACTIONS, 1998, 111 (1-4): : 179 - 187
  • [39] Iron-containing atmospheric aerosols
    B. Kopcewicz
    M. Kopcewicz
    Hyperfine Interactions, 1998, 111 : 179 - 187
  • [40] Iron-containing nodules of cirrhosis
    Zhang, JB
    Krinsky, GA
    NMR IN BIOMEDICINE, 2004, 17 (07) : 459 - 464