An Aqueous-Chemistry Approach to Nano-Bismuth Telluride and Nano-Antimony Telluride as Thermoelectric Materials

被引:0
|
作者
U. Pelz
K. Kaspar
S. Schmidt
M. Dold
M. Jägle
A. Pfaadt
H. Hillebrecht
机构
[1] University of Freiburg,Institute of Inorganic and Analytic Chemistry
[2] Fraunhofer Institute for Physical Measurement Techniques IPM,undefined
[3] Freiburger Materialforschungszentrum,undefined
来源
关键词
Nanoparticles; bismuth telluride; antimony telluride; chemical synthesis; thermoelectric material;
D O I
暂无
中图分类号
学科分类号
摘要
Chemical synthesis of bismuth telluride Bi2Te3 and other chalcogenide thermoelectric materials is possible by many different routes. Most often, the chalcogenide material is produced as nanocrystals of various morphologies in attempts to achieve better thermoelectric performance in the nanocomposite because of enhanced grain boundary scattering. However, publications dealing with the synthesis of large amounts of cheap nanomaterials are still very rare. We present an aqueous chemical synthesis in alkaline solution as well as in an NH3/NH4Cl buffer medium producing nanocrystalline bismuth telluride in high quantities. For the precipitation process, different Bi and Sb salts can be used as precursors resulting in a variety of product morphologies. The use of a buffer medium for the reaction solution makes it possible to dissolve the precursors in acidic medium, adding a solution instead of dispersion to the reaction medium. The powders from the reactions were sintered to give nanocomposites using spark plasma sintering. Only a small influence of sintering on the nanostructure could be detected. Room-temperature thermoelectric properties of these nanocomposites are within the range or slightly worse than the values for bulk material.
引用
收藏
页码:1851 / 1857
页数:6
相关论文
共 50 条
  • [1] An Aqueous-Chemistry Approach to Nano-Bismuth Telluride and Nano-Antimony Telluride as Thermoelectric Materials
    Pelz, U.
    Kaspar, K.
    Schmidt, S.
    Dold, M.
    Jaegle, M.
    Pfaadt, A.
    Hillebrecht, H.
    JOURNAL OF ELECTRONIC MATERIALS, 2012, 41 (06) : 1851 - 1857
  • [2] THERMAL CONDUCTIVITY OF NANO-POROUS BISMUTH ANTIMONY TELLURIDE
    Tanaka, Saburo
    Takashiri, Masayuki
    Miyazaki, Koji
    PROCEEDINGS OF THE ASME INTERNATIONAL HEAT TRANSFER CONFERENCE - 2010, VOL 4: HEAT TRANSFER MEASUREMENT TECHNIQUES, HEAT TRANSFER EQUIPMENT, THERMOELECTRICS, 2010, : 873 - 877
  • [3] Fabrication process of antimony telluride and bismuth telluride micro thermoelectric generator
    Mizoshiri, Mizue
    Mikami, Masashi
    Ozaki, Kimihiro
    International Journal of Automation Technology, 2015, 9 (06) : 612 - 618
  • [4] Synthesis and evaluation of lead telluride/bismuth antimony telluride nanocomposites for thermoelectric applications
    Ganguly, Shreyashi
    Zhou, Chen
    Morelli, Donald
    Sakamoto, Jeffrey
    Uher, Ctirad
    Brock, Stephanie L.
    JOURNAL OF SOLID STATE CHEMISTRY, 2011, 184 (12) : 3195 - 3201
  • [5] An additive approach to low temperature zero pressure sintering of bismuth antimony telluride thermoelectric materials
    Catlin, Glenn C.
    Tripathi, Rajesh
    Nunes, Geoffrey, Jr.
    Lynch, Philip B.
    Jones, Howard D.
    Schmitt, Devin C.
    JOURNAL OF POWER SOURCES, 2017, 343 : 316 - 321
  • [6] Efficiency and stability of bismuth antimony telluride thermoelectric films
    Shvangiradze, RR
    Anisimov, BB
    Dzhamagidze, SZ
    INORGANIC MATERIALS, 1997, 33 (06) : 562 - 565
  • [7] Investigation of nano ceramics added bismuth antimony telluride for energy harvesting applications
    Shendur, G. Shyam
    Abeens, M.
    Muruganadhan, R.
    Arivanandhan, M.
    Premnath, M.
    Rajasekaran, E.
    MATERIALS TODAY-PROCEEDINGS, 2020, 22 : 879 - 883
  • [8] Deposition and Fabrication of Sputtered Bismuth Telluride and Antimony Telluride for Microscale Thermoelectric Energy Harvesters
    Haidar, Samer A.
    Gao, Yuan
    He, Yifan
    Cornett, Jane E.
    Chen, Baoxing
    Coburn, Nigel J.
    Glynn, Colm
    Dunham, Marc T.
    Goodson, Kenneth E.
    Sun, Nian
    THIN SOLID FILMS, 2021, 717
  • [9] Process Integration of Co-Sputtered Bismuth Telluride/Antimony Telluride Thermoelectric Junctions
    Shea, Ryan
    Gawarikar, Anand
    Talghader, Joseph
    JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2014, 23 (03) : 681 - 688
  • [10] THE ANALYSIS OF BISMUTH TELLURIDE AND RELATED THERMOELECTRIC MATERIALS
    CLULEY, HJ
    PROFFITT, PMC
    ANALYST, 1960, 85 (1016) : 815 - 822