Chemical and electrochemical characterization of a novel nanocomposite formed from V2O5 and Poly(N-propane sulfonic acid aniline), a self-doped polyaniline

被引:51
作者
Huguenin, F [1 ]
Gambardella, MTD
Torresi, RM
de Torresi, SI
Buttry, DA
机构
[1] Univ Sao Paulo, Inst Quim Sao Carlos, BR-13560970 Sao Carlos, SP, Brazil
[2] Univ Sao Paulo, Inst Quim, BR-05599970 Sao Paulo, Brazil
[3] Univ Wyoming, Dept Chem, Laramie, WY 82071 USA
关键词
D O I
10.1149/1.1393550
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Synthesis and characterization of new nanocomposites of V2O5 and a sulfonated, alkylated polyaniline derivative [poly(N-propane sulfonic acid aniline), PSPAN] are described. Two types of PSPAN-V2O5 nanocomposites have been produced, one by reaction of vanadium triisopropoxide solutions with N-propane sulfonic acid aniline and one by addition of H2O2 to these same solutions. Nanocomposites are characterized using thermal gravimetric analysis, differencial scanning calorimetry(DSC), cyclic voltammetry, chronopotentiometry, and impedance spectroscopy The increase of the 001 reflection spacing, X-ray diffraction results show that the polymer is intercalated into the V2O5 interlayer region, consistent with the nanocomposite nature of the material. The DSC and infrared data suggest that water coordinated to vanadium sites exposed to the interlayer region is lost during formation of the nanocomposite. SEMs show that, in contrast to the relatively flat and featureless V2O5. 1.6H(2)O thin films, the nanocomposites are highly textured and have quite small feature sizes. Electrochemical results show that some of the nanocomposites have larger specific capacity (307 Ah/kg) and faster reduction kinetics than V2O5. 16.H2O and similar cyclability. The relevance of these results to general approaches to the production of nanocomposites for Li secondary battery cathodes is discussed. (C) 2000 The Electrorchemical Society. S0013-4651(99)12-099-8. All rights reserved.
引用
收藏
页码:2437 / 2444
页数:8
相关论文
共 38 条
[1]   LAYERED STRUCTURE OF VANADIUM PENTOXIDE GELS [J].
ALDEBERT, P ;
BAFFIER, N ;
GHARBI, N ;
LIVAGE, J .
MATERIALS RESEARCH BULLETIN, 1981, 16 (06) :669-676
[2]   Electrochemical conditioning of vanadium(V) pentoxide xerogel films [J].
Anaissi, FJ ;
Demets, GJF ;
Toma, HE .
ELECTROCHEMISTRY COMMUNICATIONS, 1999, 1 (08) :332-335
[3]   Characterization of a class of plasticized polymer electrolytes and application in Li/V6O13 cells [J].
Andrei, M ;
Soprani, M .
ELECTROCHIMICA ACTA, 1998, 43 (10-11) :1205-1215
[4]   Structures and properties of the water-soluble self-acid-doped conducting polymer blends: Sulfonic acid ring-substituted polyaniline/poly(vinyl alcohol) and poly(aniline-co-N-propanesulfonic acid aniline)/poly(vinyl alcohol) [J].
Chen, SA ;
Hwang, GW .
POLYMER, 1997, 38 (13) :3333-3346
[5]  
da Silva JEP, 1999, ELECTROCHIM ACTA, V44, P1887
[6]  
da Silva JEP, 2000, MACROMOLECULES, V33, P3077
[7]   CHARACTERIZATION OF ANODICALLY FORMED POLYPYRROLE TUNGSTEN TRIOXIDE COMPOSITES [J].
DAHLHAUS, M ;
BECK, F .
JOURNAL OF APPLIED ELECTROCHEMISTRY, 1993, 23 (10) :957-965
[8]  
De Levie R, 1967, ADV ELECTROCHEMISTRY, V6, P329
[9]   Average voltage, energy density, and specific energy of lithium-ion batteries - Calculation based on first principles [J].
Deiss, E ;
Wokaun, A ;
Barras, JL ;
Daul, C ;
Dufek, P .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1997, 144 (11) :3877-3881
[10]   COMPARISON OF THE AC-IMPEDANCE OF CONDUCTING POLYMER-FILMS STUDIED AS ELECTRODE-SUPPORTED AND FREESTANDING MEMBRANES [J].
DESLOUIS, C ;
MUSIANI, MM ;
TRIBOLLET, B ;
VOROTYNTSEV, MA .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1995, 142 (06) :1902-1908