Cost Efficient Manufacturing of Silicide Thermoelectric Materials and Modules using RGS Technique

被引:6
|
作者
Schonecker, A. [1 ]
Kraaijveld, B. [1 ]
van Til, A. E. [2 ]
Bottger, A. J. [2 ]
Brinks, P. [3 ]
Huijben, M. [3 ]
den Heijer, M. [1 ]
机构
[1] RGS Dev BV, NL-1721 PW Broek Op Langedijk, Netherlands
[2] Delft Univ Technol, NL-2628 CD Delft, Netherlands
[3] Univ Twente, MESA Inst Nanotechnol, NL-7500 AE Enschede, Netherlands
关键词
D O I
10.1016/j.matpr.2015.05.074
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Thermoelectric (TE) power generation presents a promising and attractive way to convert high temperature waste heat into electricity. However in many situations, such as in industrial waste heat recovery, the market is looking for affordable solutions, while the search for efficient and stable materials is still ongoing. The relatively high TE system costs, are partially due to material costs such as for Te in BiTe, or PbTe, but also due to the relatively small scale leg-and module manufacturing process. Especially in the leg manufacturing, there are often a number of steps involved such as ingot crystallization, ball milling, hot pressing or plasma sintering and leg sawing. With the availability of the ribbon-growth-on-substrate (RGS) technology, it is possible to cast semiconductor material in a net-shape form directly from the melt, thus reducing the number of manufacturing steps, material losses and production costs. In combination with a strip leg based module concept, the potential for a major cost reduction step is within reach. Besides affordability, other challenges are to demonstrate a material that is stable at elevated temperatures, and comparable or better than material produced by other semiconductor manufacturing processes. In this paper, the progress in manufacturing higher manganese silicon material by the RGS process is shown, demonstrating ZT values above 0.5. It could be shown that the phase composition can be controlled by the RGS process and that phase geometry is tunable by changing crystallization velocity. This phase structuring ability is seen as an opportunity to enhance phonon scattering by phase boundaries, and hence further improve ZT values. Controlling the Si phase in HMS was found to be key in the RGS material development process. Especially the addition of chromium doping not only changed carrier concentration and conductivity, but also resulted in a different phase composition of the cast material. In addition to the material development the strip material based module concept is introduced and first demonstrators devices are shown. (C) 2015 Published by Elsevier Ltd.
引用
收藏
页码:538 / 547
页数:10
相关论文
共 50 条
  • [1] Manufacturing and performances of silicide-based thermoelectric modules
    Mouko, H. Ihou
    Romanjek, K.
    Mejri, M.
    Oulfarsi, M.
    El Oualid, S.
    Malinconi, P.
    Thimont, Y.
    Malard, B.
    Estournes, C.
    David, N.
    Dauscher, A.
    ENERGY CONVERSION AND MANAGEMENT, 2021, 242
  • [2] Bulk higher manganese silicide thermoelectric materials and modules
    Zhou, Aijun
    Cui, Hengguan
    Li, Jingze
    Zhu, Tiejun
    Zhao, Xinbing
    2011 CHINESE MATERIALS CONFERENCE, 2012, 27 : 94 - 102
  • [3] Silicide Nanopowders as Low-Cost and High-Performance Thermoelectric Materials
    Chen, Renkun
    JOM, 2013, 65 (06) : 702 - 708
  • [4] Efficient technique for computational design of thermoelectric materials
    Nunez-Valdez, Maribel
    Allahyari, Zahed
    Fan, Tao
    Oganov, Artem R.
    COMPUTER PHYSICS COMMUNICATIONS, 2018, 222 : 152 - 157
  • [5] Silicide Nanopowders as Low-Cost and High-Performance Thermoelectric Materials
    Renkun Chen
    JOM, 2013, 65 : 702 - 708
  • [6] Stability and thermoelectric performance of doped higher manganese silicide materials solidi fied by RGS (ribbon growth on substrate) synthesis
    Pichon, Pierre-Yves
    Berneron, Pierre
    Levinsky, Joshua
    Burema, Arjan
    Blake, Graeme
    Berthebaud, David
    Gascoin, Stephanie
    Gascoin, Franck
    Hebert, Sylvie
    Amtsfeld, Jonas
    Hommels, Tijmen
    Huijben, Mark
    de Boor, Johannes
    Mueller, Eckhard
    Navone, Christelle
    Schonecker, Axel
    JOURNAL OF ALLOYS AND COMPOUNDS, 2020, 832
  • [7] Manufacturing thermoelectric micro-modules using micromachined silicon wafers
    Li, JF
    Watanabe, R
    Suzuki, H
    Sugimoto, S
    Tanaka, S
    Esashi, M
    PRICM 4: FORTH PACIFIC RIM INTERNATIONAL CONFERENCE ON ADVANCED MATERIALS AND PROCESSING, VOLS I AND II, 2001, : 2209 - 2212
  • [8] Fast sintering of thermoelectric silicide powders using Open Die Pressing technique
    Fanciulli, C.
    Battiston, S.
    Boldrini, S.
    Villa, E.
    Famengo, A.
    Fiameni, S.
    Fabrizio, M.
    Passaretti, F.
    MATERIALS TODAY-PROCEEDINGS, 2015, 2 (02) : 566 - 572
  • [9] A quick and efficient measurement technique for performance evaluation of thermoelectric materials
    Rao, Ashwin
    Banjade, Pawan
    Bosak, Gregg
    Joshi, Binay
    Keane, Jennifer
    Nally, Luke
    Peng, Adam
    Perera, Susanthri
    Waring, Alfred
    Joshi, Giri
    Poudel, Bed
    MEASUREMENT SCIENCE AND TECHNOLOGY, 2016, 27 (10)
  • [10] Efficient, low-cost solar thermoelectric cogenerators comprising evacuated tubular solar collectors and thermoelectric modules
    Zhang, Ming
    Miao, Lei
    Kang, Yi Pu
    Tanemura, Sakae
    Fisher, Craig A. J.
    Xu, Gang
    Li, Chun Xin
    Fan, Guang Zhu
    APPLIED ENERGY, 2013, 109 : 51 - 59