Groeneveld Dennis, Koenig Jan D, Poschmann Michael, Groß Hendrik, Bensch Wolfgang, Kienle Lorenz, Wöllenstein Jürgen
Laboratory for Gas Sensors IMTEK - Department of Microsystems Engineering, University of Freiburg, Georges-Koehler-Allee 102, 79110 Freiburg, Germany.
Fraunhofer Institute for Physical Measurement Techniques IPM, Georges-Köhler-Allee 301, 79110 Freiburg, Germany.
R Soc Open Sci. 2022 Mar 30;9(3):210714. doi: 10.1098/rsos.210714. eCollection 2022 Mar.
Here, we report on the time dependence of a synthesis procedure for generation of both n- and p-type bismuth telluride-based materials. To initiate the reaction, the starting materials were first mechanical pre-reacted. The Rietveld refinements of X-ray diffraction (XRD) data collected after different milling times demonstrate that BiTe was formed after only 10 min, and longer milling times do not alter the composition. To complete the phase formation, the powders were treated by field-assisted sintering and heat treatment afterwards. The effect of this fast procedure on the structural and thermoelectric properties was investigated. Samples were obtained with relative densities above 99%. A clear preferred orientation of the crystallites in the samples is evidenced by Rietveld refinements of XRD data. The thermoelectric characteristics demonstrate a good performance despite the short milling time. Further, it was demonstrated for this fast synthesis that the physical transport properties can be varied with well-known n- and p-type dopants like CHI or Pb. For these non-optimized materials, a value of 0.7 (n-type) and 0.9 (p-type) between 400 and 450 K was achieved. The long-term stability is demonstrated by repeated measurements up to 523 K showing no significant alteration of the thermoelectric performance.
在此,我们报告了一种用于生成n型和p型碲化铋基材料的合成程序的时间依赖性。为引发反应,起始原料首先进行机械预反应。对不同研磨时间后收集的X射线衍射(XRD)数据进行的Rietveld精修表明,仅在10分钟后就形成了BiTe,更长的研磨时间不会改变其组成。为完成相形成,随后对粉末进行场辅助烧结和热处理。研究了这种快速程序对结构和热电性能的影响。获得了相对密度高于99%的样品。XRD数据的Rietveld精修证明了样品中微晶存在明显的择优取向。尽管研磨时间短,但热电特性显示出良好的性能。此外,对于这种快速合成方法,已证明物理输运性质可以通过诸如CHI或Pb等众所周知的n型和p型掺杂剂来改变。对于这些未优化的材料,在400至450 K之间实现了0.7(n型)和0.9(p型)的 值。通过在高达523 K的反复测量证明了长期稳定性,热电性能没有明显变化。