Acta Metallurgica Sinica (English Letters) >
Impedance Studies of La2Mo2-xSnxO9-δ Oxide Ion Conductors
Received date: 2012-12-24
Revised date: 2013-03-06
Online published: 2013-07-11
A series of compounds La2Mo2-xSnxO9-δ(x=0-0.3) have been synthesized by solid-state reaction technique. Materials have been characterized by XRD, SEM, DSC and impedance study. In the temperature regime 520℃-590℃, the specimens with x≤0.05 have the conductivity higher than La2Mo2O9. Conductivity of Sn-doped compound decreases consistently with increasing Sn-doping, compared to the undoped compound both below and above phase transition, barring the specimen with x≤0.05, where conductivity values remains almost same as that of undoped specimens in high temperature region. In the intermediate temperature regime (520℃-590℃), the conductivity of doped compounds increases for x≤0.05 as compared to parent compound. Also, there is no indication of phase stabilization with Sn-doping in this compound even with the highest doping level, x=0.3. Electric modulus analysis suggests that thermally activated oxygen ion hopping mechanism is responsible for the conduction in Sn-doped compound.
Lakhi Nath Borah , A. Pandey . Impedance Studies of La2Mo2-xSnxO9-δ Oxide Ion Conductors[J]. Acta Metallurgica Sinica (English Letters), 2013 , 26(4) : 425 -434 . DOI: 10.1007/s40195-012-0273-3
[1]V. Thangadurai and W. Weppner, Ionics 12(2006)81.
[2]S. J. Skinner and J. A. Kilner, Mater. Today 6(2003) 30.
[3]S. Georges, F. Goutenoire, O. Bohnke, M. C. Steil, S. J.Skinner, H. D. Wiemhofer and P. Lacorre, J. New Mater. Electrochem.Syst. 7 (2004) 51.
[4]Z.G. Yi, Q.F. Fang, X.P. Wang and G.G. Zhang, Solid State Ionics 160 (2003) 117.
[5]P. Lacorre, F. Goutenoire, O. Bohnke, R. Retoux and Y.Laligant, Nature 404 (2000) 856.
[6]J. Yang, Z. Gu, Z. Wen and D. Yan, Solid State Ionics 176 (2005) 523.
[7]R. Subasri, D. Matusch, H. Nafe and F. Aldinger, J. Eur.Ceram. Soc. 24 (2004) 129.
[8]S. Georges, F. Goutenoire, F. Altorfer, D. Sheptyakov, F.Fauth, E. Suard and P. Lacorre, Solid State Ionics 161(2003) 231.
[9]G. Corbel, P. Durand and P. Lacorre, J. Solid State Chem.182 (2009) 1009.
[10]T.Y. Jin, M.V. Madhava Rao, C.L. Cheng, D.S. Tsai and M.H.Hung, Solid State Ionics 178 (2007) 367.
[11]L.N. Borah, Sanjay and A. Pandey, Indian J. Phys.84 (2010) 699.
[12]L. Borah, B. Paik, S. A. Hashmi and A. Pandey, Ionics 18 (2012) 747.
[13]L. Borah, B. Paik and A. Pandey, Solid State Sci.14(2012) 387.
[14]F. Goutenoire, O. Isnard and P. Lacorre, Chem. Mater.12(2000)2575.
[15]J.R. Macdonald, Impedance spectroscopy Emphasizing Solid Materials and Systems, Wiley, New York, 1987, p..
[16]S. A. Bondarenko and G. A. Ragoisha, EIS Spectrum Analyser, 2008, http:/www.abc.chemistry.bsu.by/vi/analyzer/
[17]J. T. C. Irvine and D. C. Sinclair, A. R. West, Adv.Mater. 2 (1990) 134.
[18]D. P. Almond, C. C. Hunter and A. R. West, J. Mater. Sci.19 (1984) 3236.
[19]R. A. Huggins, Ionics 8 (2002) 300.
[20]C. Li, X. P. Wang, J.X. Wang, D. Li, Z. Zhuang and Q.F.Fang, Mater. Res. Bull. 42 (2007) 1077.
[21]A. K. Jonscher: Nature 267 (1977) 673.
[22]R. Gerhardt, J. Phys. Chem. Solids 55 (1994)1491.
[23]A. Dutta and T. P. Singha, J. Phys. Chem. Solid 67 (2006) 1484.
/
| 〈 |
|
〉 |