1,370
Views
21
CrossRef citations to date
0
Altmetric
RESEARCH PAPER

Comprehensive study of tellurium based glass ceramics for thermoelectric application

, , , , , , , & show all
Pages S42-S47 | Received 12 Feb 2015, Accepted 30 Jun 2015, Published online: 03 Aug 2015

References

  • S. B. Riffat and X. Ma: ‘Thermoelectrics: a review of present and potential applications’, Appl. Therm. Eng., 2003, 23, (8), 913–935.
  • P. A. Kinzie: ‘Thermocouple temperature measurement’, 1973, New York, Wiley.
  • H. Xi, L. Luo and G. Fraisse: ‘Development and applications of solar-based thermoelectric technologies’, Renewable Sustainable Energy Rev., 2007, 11, (5), 923–936.
  • G. A. Slack: ‘New materials and performance limits for thermoelectric cooling’, CRC Handb. Thermoelectrics, 1995, 34, 407–439.
  • P. Lucas, C. Conseil, Z. Yang, Q. Hao, S. Cui, C. Boussard-Pledel, B. Bureau, F. Gascoin, C. Caillaud and O. Gulbiten: ‘Thermoelectric bulk glasses based on the Cu-As-Te-Se system’, J. Mater. Chem. A, 2013, 1A, (31), 8917–8925.
  • S.-N. Zhang, J. He, T.-J. Zhu, X.-B. Zhao and T. M. Tritt: ‘Thermal conductivity and specific heat of bulk amorphous chalcogenides Ge20Te80 − xSex (x = 0, 1, 2, 8)’, J. Non-Cryst. Solids, 2009, 355, (2), 79–83.
  • J. Philip, R. Rajesh and C. P. Menon: ‘Carrier-type reversal in Pb-Ge-Se glasses: Photopyroelectric measurements of thermal conductivity and heat capacity’, Appl. Phys. Lett., 2001, 78, (6), 745–747.
  • A. P. Gonçalves, E. B. Lopes, O. Rouleau and C. Godart: ‘Conducting glasses as new potential thermoelectric materials: the Cu-Ge-Te case’, J. Mater. Chem., 2010, 20, (8), 1516–1521.
  • C. Seager, D. Emin and R. K. Quinn: ‘Electrical transport and structural properties of bulk As-Te-I, As-Te-Ge, and As-Te chalcogenide glasses’, Phys. Rev. B, 1973, 8B, (10), 4746.
  • A. P. Gonçalves, E. B. Lopes, G. Delaizir, J. B. Vaney, B. Lenoir, A. Piarristeguy, A. Pradel, J. Monnier, P. Ochin and C. Godart: ‘Semiconducting glasses: A new class of thermoelectric materials?’, J. Solid State Chem., 2012, 193, 26–30.
  • J. Vaney, G. Delaizir, E. Alleno, O. Rouleau, A. Piarristeguy, J. Monnier, C. Godart, M. Ribes, R. Escalier and A. Pradel: ‘A comprehensive study of the crystallization of Cu-As-Te glasses: microstructure and thermoelectric properties’, J. Mater. Chem. A, 2013, 1A, (28), 8190–8200.
  • A. P. Gonçalves, G. Delaizir, E. B. Lopes, L. M. Ferreira, O. Rouleau and C. Godart: ‘Chalcogenide glasses as prospective thermoelectric materials’, J. Electron. Mater., 2011, 40, (5), 1015–1017.
  • J. B. Vaney, A. Piarristeguy, A. Pradel, E. Alleno, B. Lenoir, C. Candolfi, A. Dauscher, A. P. Gonçalves, E. B. Lopes, G. Delaizir, J. Monnier, M. Ribes and C. Godart: ‘Thermal stability and thermoelectric properties of CuxAs40 − xTe60 − ySey semiconducting glasses’, J. Solid State Chem., 2013, 203, 212–217.
  • P. Lucas, C. Conseil, Z. Yang, Q. Hao, S. Cui, C. Boussard-Pledel, B. Bureau, F. Gascoin, C. Caillaud, O. Gulbiten, T. Guizouarn, P. Baruah, Q. Li and J. Lucas: ‘Thermoelectric bulk glasses based on the Cu-As-Te-Se system’, J. Mater. Chem. A, 2013, 1A, (31), 8917–8925.
  • K. Liang, A. Bienenstock and C. Bates: ‘Structural studies of glassy CuAsSe2 and Cu-As2Se3 alloys’, Phys. Rev. B, 1974, 10B, (4), 1528.
  • A. Giridhar and S. Mahadevan: ‘Mean atomic volume, Tg and electrical conductivity of Cux(As0.4Te0.6)100 − x glasses’, J. Non-Cryst. Solids, 1998, 238, (3), 225–233.
  • K. Tanaka and K. Shimakawa: ‘Amorphous chalcogenide semiconductors and related materials’, 2011, New York, Springer.
  • M. Kotkata, M. El-Fouly, S. Fayek and S. El-Hakim: ‘The effect of Tl addition on the electrical and thermal transport properties of amorphous As2Se3’, Semicond. Sci. Technol., 1986, 1, (5), 313.
  • S. Mahadevan and A. Giridhar: ‘Ga as an additive in the As2Te3 glass’, J. Mater. Sci., 2001, 36, (22), 5325–5332.
  • N. Zotov, F. Bellido, M. Dominguez, A. Hannon and R. Sonntag: ‘Continuous random network models of Cu-As-Te glasses’, Physica B, 2000, 276B, 463–464.
  • B. Poudel, Q. Hao, Y. Ma, Y. Lan, A. Minnich, B. Yu, X. Yan, D. Wang, A. Muto and D. Vashaee: ‘High-thermoelectric performance of nanostructured bismuth antimony telluride bulk alloys’, Science, 2008, 320, (5876), 634–638.
  • H. R. Williams, R. M. Ambrosi, K. Chen, U. Friedman, H. Ning, M. J. Reece, M. C. Robbins, K. Simpson and K. Stephenson: ‘Spark plasma sintered bismuth telluride-based thermoelectric materials incorporating dispersed boron carbide’, J. Alloys Compd, 2015, 626, 368–374.
  • C.-J. Liu, G.-J. Liu, Y.-L. Liu, L.-R. Chen and A. B. Kaiser: ‘Enhanced thermoelectric performance of compacted Bi0.5Sb1.5Te3 nanoplatelets with low thermal conductivity’, J. Mater. Res., 2011, 26, (15), 1755–1761.
  • P. Zhu, Y. Imai, Y. Isoda, Y. Shinohara, X. Jia, G. Ren and G. Zou: ‘Electrical transport and thermoelectric properties of PbTe prepared by HPHT’, Mater. Trans., 2004, 45, (11), 3102–3105.
  • N. Mateeva, H. Niculescu, J. Schlenoff and L. Testardi: ‘Correlation of Seebeck coefficient and electric conductivity in polyaniline and polypyrrole’, Jpn. J. Appl. Phys., 1998, 83, (6), 3111–3117.
  • Y. Ma, Q. Hao, B. Poudel, Y. Lan, B. Yu, D. Wang, G. Chen and Z. Ren: ‘Enhanced thermoelectric figure-of-merit in p-type nanostructured bismuth antimony tellurium alloys made from elemental chunks’, Nano Lett., 2008, 8, (8), 2580–2584.
  • S. Stehlik, J. Kolar, M. Bartos, M. Vlcek, M. Frumar, V. Zima and T. Wagner: ‘Conductivity in Ag-As-S (Se, Te) chalcogenide glasses’, Solid State Ionics, 2010, 181, (37), 1625–1630.
  • R. Zeller and R. Pohl: ‘Thermal conductivity and specific heat of noncrystalline solids’, Phys. Rev. B, 1971, 4, (6), 2029.
  • C. Kittel: ‘Interpretation of the thermal conductivity of glasses’, Phys. Rev., 1949, 75, (6), 972–974.