Comparison of Three Approaches for Bioleaching of Rare Earth Elements from Bauxite

被引:31
作者
Barnett, Megan J. [1 ]
Palumbo-Roe, Barbara [1 ]
Deady, Eimear A. [2 ]
Gregory, Simon P. [1 ]
机构
[1] British Geol Survey, Nicker Hill, Keyworth NG12 5GG, Notts, England
[2] British Geol Survey, Lyell Ctr, Res Ave South, Edinburgh EH14 4AP, Midlothian, Scotland
基金
英国自然环境研究理事会;
关键词
bioleaching; bauxite; rare earth elements; Turkey; Aspergillussp; acidophile; Acidithiobacillus ferrooxidans; DEPOSITS; MONAZITE; COPPER; RESOURCES; MINERALS; BACTERIA; TURKEY; ORE;
D O I
10.3390/min10080649
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Approximately 300 million tonnes of bauxite are processed annually, primarily to extract alumina, and can contain moderate rare earth element (REE) concentrations, which are critical to a green energy future. Three bioleaching techniques (organic acid, reductive and oxidative) were tested on three karst bauxites using eitherAspergillussp. (organic acid bioleaching) orAcidithiobacillus ferrooxidans(reductive and oxidative bioleaching). Recovery was highest in relation to middle REE (generally Nd to Gd), with maximum recovery of individual REE between 26.2% and 62.8%, depending on the bauxite sample. REE recovery occurred at low pH (generally < 3), as a result of organic acids produced byAspergillussp. or sulphuric acid present inA. ferrooxidansgrowth media. Acid production was seen whenA. ferrooxidanswas present. However, a clear increase in REE recovery in the presence ofA. ferrooxidans(compared to the control) was only seen with one bauxite sample (clay-rich) and only under oxidative conditions. The complex and varied nature of REE-bearing minerals in bauxite provides multiple targets for bioleaching, and although the majority of recoverable REE can be leached by organic and inorganic acids, there is potential for enhanced recovery by bioleaching.
引用
收藏
页码:1 / 19
页数:18
相关论文
共 51 条
[31]  
Mouchos E., 2016, Bulletin of the Geological Society of Greece (L), P1952
[32]  
Muzaffer Karadag M., 2009, GEOCHEMISTRY-GERMANY, V69, P143, DOI [10.1016/j.chemer.2008.04.005, DOI 10.1016/J.CHEMER.2008.04.005]
[33]   Bioreductive Dissolution as a Pretreatment for Recalcitrant Rare-Earth Phosphate Minerals Associated with Lateritic Ores [J].
Nancucheo, Ivan ;
Oliveira, Guilherme ;
Lopes, Manoel ;
Johnson, David Barrie .
MINERALS, 2019, 9 (03)
[34]   Extraction of copper from an oxidized (lateritic) ore using bacterially catalysed reductive dissolution [J].
Nancucheo, Ivan ;
Grail, Barry M. ;
Hilario, Felipe ;
du Plessis, Chris ;
Johnson, D. Barrie .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2014, 98 (14) :6297-6305
[35]  
NI YX, 1995, AM MINERAL, V80, P21
[36]  
OGURTSOVA LV, 1989, MICROBIOLOGY+, V58, P774
[37]   Bioleaching review part B: Progress in bioleaching: applications of microbial processes by the minerals industries [J].
Olson, GJ ;
Brierley, JA ;
Brierley, CL .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2003, 63 (03) :249-257
[38]   Genesis of the Dogankuzu and mortas Bauxite deposits, Taurides, Turkey:: Separation of Al, Fe, and Mn and implications for passive margin metallogeny [J].
Öztürk, H ;
Hein, JR ;
Hanilçi, N .
ECONOMIC GEOLOGY AND THE BULLETIN OF THE SOCIETY OF ECONOMIC GEOLOGISTS, 2002, 97 (05) :1063-1077
[39]   Effectiveness of iron reducing bacteria for the removal of iron from bauxite ores [J].
Papassiopi, Nymphodora ;
Vaxevanidou, Katerina ;
Paspaliaris, Ioannis .
MINERALS ENGINEERING, 2010, 23 (01) :25-31
[40]   Bio-recycling of metals: Recycling of technical products using biological applications [J].
Pollmann, Katrin ;
Kutschke, Sabine ;
Matys, Sabine ;
Raff, Johannes ;
Hlawacek, Gregor ;
Lederer, Franziska L. .
BIOTECHNOLOGY ADVANCES, 2018, 36 (04) :1048-1062