Thermoelectric Properties of ZnO-P<sub>2</sub>O<sub>5</sub>/(Ni) Composites — Oak Academic Publishing
Research ArticleOpen AccessGoogle Scholar indexed
Thermoelectric Properties of ZnO-P<sub>2</sub>O<sub>5</sub>/(Ni) Composites
Laboratory of Composite Materials, Polymers and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed V, Rabat-Agdal, Morocco
,
Laboratory of Composite Materials, Polymers and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed V, Rabat-Agdal, Morocco
,
XLIM UMR 6172-Université de Limoges/CNRS, Limoges Cedex, France
,
LPSMS, FST Errachidia, University Moulay Ismail Meknès, Errachidia, Morocco
1 Laboratory of Composite Materials, Polymers and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed V, Rabat-Agdal, Morocco
2 Laboratory of Composite Materials, Polymers and Environment, Department of Chemistry, Faculty of Sciences, University Mohammed V, Rabat-Agdal, Morocco
3 XLIM UMR 6172-Université de Limoges/CNRS, Limoges Cedex, France
4 LPSMS, FST Errachidia, University Moulay Ismail Meknès, Errachidia, Morocco
The overall purpose of the present study is basically to understand the manifestation of the thermo-electrical properties of the matrix ZnO-P 2 O 5 first, and of the ZnO-P 2 O 5 composites loaded with different volume fractions of nickel (Ni) as conductive fillers. In the matrix ZnO-P 2 O 5 , the values of electrical conductivity varied between 1.14 × 10 -8 and 7.8 × 10 - 7 (S/cm), and the Seebeck coefficient value varied between minimal value 265 and maximal value 670 (μV/K) in the studied temperature. In composite ZnO-P 2 O 5 /Ni, it was shown that the Seebeck coefficient changed from high positive to negative values when the filler amount was increased, indicating a non-conducting to conducting phase transition. Such behavior exhibits that this transition is accompanied by the passing of carrier charge from p to n type. The study of thermoelectrically transport for high volume fraction of filler enabled the achievement, for the first time on this kind of composites, of an original transition called PTC transition. Thus, highest values of power factor (PF = S 2 ≈ 2 × 10 - 3 W · m - 1 · K - 2 at 407 K) were obtained, giving a possibility of industrial applications.
Nolas, G.S. Sharp, J. and Goldsmid, H. (2001) Thermoelectrics: Basic Principles and New Materials Developments. Springer, New York. http://dx.doi.org/10.1007/978-3-662-04569-5
Venkatasubramanian, R. Siivola, E. Colpitts, T. and O’Quinn, B. (2001) Thin-Film Thermoelectric Devices with High Room-Temperature Figures of Merit. Nature, 413, 597-602. http://dx.doi.org/10.1038/35098012
Tritt, T.M. (2002) Thermoelectric Materials: Principles, Structure, Properties, and Applications. Encyclopedia of Materials: Science and Technology, 2nd Edition, 1-11. http://dx.doi.org/10.1016/b0-08-043152-6/01822-2
Minnich, A.J. Dresselhaus, M.S., Ren, Z.F. and Chen, G. (2009) Bulk Nanostructured Thermoelectric Materials: Current Research and Future Prospects. Energy & Environmental Science, 2, 466-479. http://dx.doi.org/10.1039/b822664b
Harman, T.C. Walsh, M.P., Laforge B.E. and Turner, G.W. (2005) Nanostructured Thermoelectric Materials. Journal of Electronic Materials, 34, L19-L22. http://dx.doi.org/10.1007/s11664-005-0083-8
Maaroufi, A., Oabi, O., Pinto, G., Ouchetto, M., Benavente, R. and Perena, J.M. (2012) Electrical Conductivity of New zinc Phosphate Glass/Metal Composites. Journal of Non-Crystalline Solids, 358, 2764-2770. http://dx.doi.org/10.1016/j.jnoncrysol.2012.06.028
Maaroufi, A., Oabi, O., Lucas, B., El Amrani, A. and Degot, S. (2012) New Composites of ZnO-P2O5/Ni Having PTC Transition and High Seebeck Coefficient. Journal of Non-Crystalline Solids, 358, 3312-3317. http://dx.doi.org/10.1016/j.jnoncrysol.2012.09.003
Smits, F.M. (1958) Measurement of Sheet Resistivities with the Four-Point Probe. Bell System Technical Journal, 37, 711-718. http://dx.doi.org/10.1002/j.1538-7305.1958.tb03883.x
Moreau, C., Antony, R., Moliton A. and Francois, B. (1997) Sensitive Thermoelectric-Power and Conductivity Measurements on Implanted Polyparaphenylene Thin-Films. Advanced Materials for Optics and Electronics, 7, 281-293. http://dx.doi.org/10.1002/(SICI)1099-0712(199711/12)7:6 3.0.CO;2-K
Rao, K.J. (1984) Glass Transition. A New Approach Based on Cluster Model of Glasses. Proceedings of the Indian Academy of Sciences—Chemical Sciences, 93, 389-406.
Dong-Sook, S. (1996) Electrical Properties of p-NiO/n-ZnO Two-Phase Mixtures. Solid State Ionics, 83, 333-348. http://dx.doi.org/10.1016/0167-2738(96)00010-0
Hussein, A., Higazy, A.A. and Ewaida, M.A. (1989) Gamma-Ray Dosimetric Properties of Molybdenum Phosphate Glasses. Journal of Materials Science, 24, 457-461. http://dx.doi.org/10.1007/bf01139067
Oine, T., Maeda, H., Tsuzuki, T., Nakayama M. and Kasuga, T. (2015) Relationship between Electrical Conductivities and Structure of Hybrid Materials Derived from Mixtures of Zinc Phosphate Glasses with Different Phosphate-Chain Lengths and Benzimidazole. Journal of Solid State Electrochemistry, 19, 907-912. http://dx.doi.org/10.1007/s10008-014-2677-7
Altaf, M., Chaudhry, M.A. and Siddiqi, S.A. (2001) DC Electrical Conductivity of Li2O-CdO-P2O5 Glasses. Materials Chemistry and Physics, 71, 28-33. http://dx.doi.org/10.1016/s0254-0584(00)00520-4
Mogus-Milankovic, A., Santic, A., Licina, V. and Day, D.E. (2005) Dielectric Behavior and Impedance Spectroscopy of Bismuth Iron Phosphate Glasses. Journal of Non-Crystalline Solids, 351, 3235-3245. http://dx.doi.org/10.1016/j.jnoncrysol.2005.08.011
Fritzsche, H.A. (1971) A General Expression for the Thermoelectric Power. Solid State Communications, 9, 1813-1815. http://dx.doi.org/10.1016/0038-1098(71)90096-2
Rao, P.T., Ramesh, K.V. and Sastry, D.L. (2012) Electrical and Spectroscopic Studies of the CdO Substituted Lead Vanadate Glass System vs Crystalline Form. New Journal of Glass and Ceramics, 2, 34-40. http://dx.doi.org/10.4236/njgc.2012.21006
Mott, N.F. (1968) Conduction in Glasses Containing Transition Metal Ions. Journal of Non-Crystalline Solids, 1, 1-17. http://dx.doi.org/10.1016/0022-3093(68)90002-1
Ramesh, K.V. and Sastry, D.L. (2006) Transport Properties of ZnO Substituted Lead Vanadate Glass System at Eutectic Composition. Materials Science and Engineering: B, 126, 66-73. http://dx.doi.org/10.1016/j.mseb.2005.08.111
Zhao, Z., Yu, W., He, X. and Chen, X. (2003) The Conduction Mechanism of Carbon Black-Filled Poly(vinylidene fluoride) Composite. Materials Letters, 57, 3082. http://dx.doi.org/10.1016/S0167-577X(02)01440-4
Yi, X.S., Shen, L. and Pan, Y. (2001) Thermal Volume Expansion in Polymeric PTC Composites: A Theoretical Approach. Composites Science and Technology, 61, 949-956. http://dx.doi.org/10.1016/S0266-3538(00)00191-3
Cai, K.F., Müller, E., Drasar, C. and Mrotzek, A. (2003) Preparation and Thermoelectric Properties of Al-Doped ZnO Ceramics. Materials Science and Engineering: B, 104, 45. http://dx.doi.org/10.1016/S0921-5107(03)00280-0
Cai, K.F., Müller, E., Drasar, C. and Mrotzek, A. (2003) Sol-Gel Processing of ZnO-Coated TiB2 Composite Powders. Materials Letters, 57, 4251-4255. http://dx.doi.org/10.1016/S0167-577X(03)00299-4
Cheng, H., Xu, X.J. and Hng, H.H. (2009) Characterization of Al-Doped ZnO Thermoelectric Materials Prepared by RF Plasma Powder Processing and Hot Press Sintering. Ceramics International, 35, 3067-3072. http://dx.doi.org/10.1016/j.ceramint.2009.04.010
Colder, H., Guilmeau, E., Harnois, C., Marinel, S., Retoux, R. and Savary, E. (2011) Preparation of Ni-Doped ZnO Ceramics for Thermoelectric Applications. Journal of the European Ceramic Society, 31, 2957. http://dx.doi.org/10.1016/j.jeurceramsoc.2011.07.006
Liang, X. and Clarke, D.R. (2014) Relation between Thermolectric Properties and Phase Equilibria in the ZnO-In2O3 Binary System. Acta Materialia, 63, 191-201. http://dx.doi.org/10.1016/j.actamat.2013.10.027
Liu, W., Kim, H.S., Jie, Q. and Ren, Z. (2016) Importance of High Power Factor in Thermoelectric Materials for Power Generation Application: A Perspective. Scripta Materialia, 111, 3-9. http://dx.doi.org/10.1016/j.scriptamat.2015.07.045