Electrolytic synthesis of carbon nanotubes from carbon dioxide in molten salts and their characterization

被引:66
作者
Novoselova, I. A. [1 ]
Oliinyk, N. F. [1 ]
Volkov, S. V. [1 ]
Konchits, A. A. [2 ]
Yanchuk, I. B. [2 ]
Yefanov, V. S. [2 ]
Kolesnik, S. P. [2 ]
Karpets, M. V. [3 ]
机构
[1] Natl Acad Sci Ukraine, Inst Gen & Inorgan Chem, UA-03680 Kiev 142, Ukraine
[2] Natl Acad Sci Ukraine, Inst Semicond Phys, UA-03028 Kiev, Ukraine
[3] Natl Acad Sci Ukraine, Inst Problems Mat Sci, UA-03680 Kiev 142, Ukraine
关键词
carbon nanotubes; electrolytic synthesis; molten salts; carbon dioxide;
D O I
10.1016/j.physe.2007.10.069
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Carbon nanotubes (CNTs) were synthesized from CO2 dissolved in molten salts using the novel electrolytic method developed by the authors. The electrolysis were carried out under current and potential controls. To establish the actual current and potential ranges, the electroreduction of carbon dioxide dissolved in the halide melts under an excess pressure up to 15 bar was studied by cyclic voltammetry on glassy-carbon (GC) electrode at a temperature of 550 degrees C. The electrochemical-chemical-electrochemical mechanism Of CO2 electroreduction was offered for explanation of the obtained results. The structure, morphology, and electronic properties of the CNTs obtained were studied using SEM, TEM, X-ray and electron diffraction analysis, Raman and ESR spectroscopy. It was found that the majority of the CNTs are multi-walled (MWCNTs), have curved form, and most often agglomerate into bundles. Almost all CNTs are filled partly with electrolyte salt. Except MWCNTs the cathode product contains carbon nanofibers, nanographite, and amorphous carbon. The dependences of CNT's yield, their diameter, and structure peculiarities against the electrolysis regimes were established. (C) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:2231 / 2237
页数:7
相关论文
共 14 条
[1]   Temperature dependence of superparamagnetic resonance of iron oxide nanoparticles [J].
Berger, R ;
Bissey, JC ;
Kliava, J ;
Daubric, H ;
Estournès, C .
JOURNAL OF MAGNETISM AND MAGNETIC MATERIALS, 2001, 234 (03) :535-544
[2]  
Chen G.Z., 2003, J MIN MET, V39, P309
[3]  
Dresselhaus M.S., 2000, Carbon Nanotubes: Synthesis, Structure, Properties, and Application
[4]   THEORY OF THE EFFECT OF SPIN-ORBIT COUPLING ON MAGNETIC RESONANCE IN SOME SEMICONDUCTORS [J].
ELLIOTT, RJ .
PHYSICAL REVIEW, 1954, 96 (02) :266-279
[5]   Ferromagnetism in twinned Pt nanoparticles obtained by laser ablation [J].
Garcia, M. A. ;
Ruiz-Gonzalez, M. L. ;
de la Fuente, G. F. ;
Crespo, P. ;
Gonzalez, J. M. ;
Llopis, J. ;
Gonzalez-Calbet, J. M. ;
Vallet-Regi, M. ;
Hernando, A. .
CHEMISTRY OF MATERIALS, 2007, 19 (04) :889-893
[6]   CONDENSED-PHASE NANOTUBES [J].
HSU, WK ;
HARE, JP ;
TERRONES, M ;
KROTO, HW ;
WALTON, DRM ;
HARRIS, PJF .
NATURE, 1995, 377 (6551) :687-687
[7]  
HUANG H, 2003, JEOL NEWS, V38, P70
[8]  
NOVOSELOVA I, 2006, 2006 EUCHEM C MOLT S, P53
[9]   Electrolytic production of carbon nano-tubes in chloride-oxide melts under carbon dioxide pressure [J].
Novoselova, I. A. ;
Oliynyk, N. F. ;
Volkov, S. V. .
HYDROGEN MATERIALS SCIENCE AND CHEMISTRY OF CARBON NANOMATERIALS, 2007, :459-+
[10]  
Novoselova I. A., 2003, J.Min. Metall, V39, P281, DOI [10.2298/JMMB0302281N, DOI 10.2298/JMMB0302281N]