Understanding the interactions of thiophosphorus collectors with chalcopyrite through DFT simulation

被引:23
作者
Sarvaramini, A. [1 ]
Larachi, F. [1 ]
机构
[1] Univ Laval, Dept Chem Engn, 1065 Ave Med, Quebec City, PQ G1V 0A6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Thiophosphorus collectors; Chalcopyrite; Flotation; DFT simulation; SULFIDE MINERALS; FLOTATION; XANTHATE; PYRITE; ADSORPTION; DITHIOPHOSPHINATE; SPHALERITE; MECHANISMS; SURFACE; XPS;
D O I
10.1016/j.commatsci.2017.02.027
中图分类号
T [工业技术];
学科分类号
120111 [工业工程];
摘要
Density functional theory simulations were performed to study the adsorption mechanism of four different thiophosphorus collectors including diethyl dithiophosphate (DEDTPA), diethyl dithiophosphinate (DEDTPI), diethyl monothiophosphate (DEMTPA) and diethyl monothiophosphinate (DEMTPI) on chalcopyrite (100) and (110) surfaces. DFT revealed a major reconstruction of sulfur and metal exposed chalcopyrite (100) surfaces after cleavage. This results into formation of disulfide dimers on the surface and migration of copper and iron inwards with respect to bulk with formation of new Fe-Fe, Cu-Fe and Cu-Cu bonds in the latter after relaxation. Thiophosphorus collectors chemisorb on the sulfur-exposed chalcopyrite (100) surface through formation of a monodentate covalent bond between sulfur atom from the collector polar head and surface-unsaturated sulfur atom. However, the interaction of the collectors with the metal exposed chalcopyrite (100) is through physisorption. The interaction of chalcopyrite (110) surface with thiophosphorus collectors involves bidentate chemical bonding between surface copper and iron atoms and sulfur and/or oxygen atoms of the collector polar-head. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:137 / 145
页数:9
相关论文
共 26 条
[1]
THE INFLUENCES OF COLLECTOR CHEMISTRY ON KINETICS AND SELECTIVITY IN BASE-METAL SULFIDE FLOTATION [J].
ADKINS, SJ ;
PEARSE, MJ .
MINERALS ENGINEERING, 1992, 5 (3-5) :295-310
[2]
A review of the fundamental studies of the copper activation mechanisms for selective flotation of the sulfide minerals, sphalerite and pyrite [J].
Chandra, A. P. ;
Gerson, A. R. .
ADVANCES IN COLLOID AND INTERFACE SCIENCE, 2009, 145 (1-2) :97-110
[3]
The separation of chalcopyrite and chalcocite from pyrite in cleaner flotation after regrinding [J].
Chen, Xumeng ;
Peng, Yongjun ;
Bradshaw, Dee .
MINERALS ENGINEERING, 2014, 58 :64-72
[4]
Water Adsorption on the Reconstructed (001) Chalcopyrite Surfaces [J].
de Lima, Guilherme Ferreira ;
de Oliveira, Claudio ;
de Abreu, Heitor Avelino ;
Duarte, Helio Anderson .
JOURNAL OF PHYSICAL CHEMISTRY C, 2011, 115 (21) :10709-10717
[5]
Reconstruction of the Chalcopyrite Surfaces-A DFT Study [J].
de Oliveira, Claudio ;
de Lima, Guilherme Ferreira ;
de Abreu, Heitor Avelino ;
Duarte, Helio Anderson .
JOURNAL OF PHYSICAL CHEMISTRY C, 2012, 116 (10) :6357-6366
[6]
Disulphide and metal sulphide formation on the reconstructed (001) surface of chalcopyrite: A DFT study [J].
de Oliveira, Claudio ;
Duarte, Helio Anderson .
APPLIED SURFACE SCIENCE, 2010, 257 (04) :1319-1324
[7]
ANALYSIS OF LOW-ENERGY ELECTRON-DIFFRACTION INTENSITIES FROM ZNS(110) [J].
DUKE, CB ;
MEYER, RJ ;
PATON, A ;
KAHN, A ;
CARELLI, J ;
YEH, JL .
JOURNAL OF VACUUM SCIENCE & TECHNOLOGY, 1981, 18 (03) :866-870
[8]
Adsorption of dithiophosphate and dithiophosphinate on chalcopyrite [J].
Güler, T ;
Hiçyilmaz, C ;
Gökagaç, G ;
Ekmeçi, Z .
MINERALS ENGINEERING, 2006, 19 (01) :62-71
[9]
Hydrophobicity of chalcopyrite with dithiophosphate and dithiophosphinate in electrochemically controlled condition [J].
Güler, T ;
Hiçyilmaz, C .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2004, 235 (1-3) :11-15
[10]
Surface structure of sphalerite studied by medium energy ion scattering and XPS [J].
Harmer, S. L. ;
Goncharova, L. V. ;
Kolarova, R. ;
Lennard, W. N. ;
Munoz-Marquez, M. A. ;
Mitchell, I. V. ;
Nesbitt, H. W. .
SURFACE SCIENCE, 2007, 601 (02) :352-361