Mechanical Alloying: An Advantageous Method for the Development of Mg2Si0.8Sn0.2 and Mg2Si Thermoelectrics Using Commercial and Recyclable Silicon.

IF 5.5 3区 材料科学 Q2 CHEMISTRY, PHYSICAL ACS Applied Energy Materials Pub Date : 2025-01-22 eCollection Date: 2025-02-10 DOI:10.1021/acsaem.4c03000
Panagiotis Mangelis, Panagiotis S Ioannou, Anne-Karin So Iland, Theodora Kyratsi
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Abstract

A comparative study of Bi-doped Si-rich silicide phases, Mg2Si0.8Sn0.2 and Mg2Si, is reported, investigating in parallel two different synthetic routes: the solid-state reaction (SSR) and mechanical alloying (MA). Both synthetic routes produce the desired silicide phases. However, powder XRD Rietveld refinements reveal appreciable Mg and Sn losses for the SSR-developed Mg2Si0.8Sn2, while EDS measurements also confirm Sn losses together with a decrease in the Bi content. This has a strong impact in electrical transport properties, indicating a severe electron doping deficiency. In contrast, the EDS results for MA-based phases are in a good agreement with the nominal values, indicating an effective Bi doping. Moreover, considering the Rietveld refinement results and SEM analysis, notable changes in the content of Mg interstitial atoms at the 4b crystallographic site seem to be correlated with the microstructure features of the two MA compounds. Electrical conductivity and Seebeck coefficient measurements confirm the aforementioned results. In addition, a small reduction in lattice thermal conductivity is observed for the two MA systems due to the nanostructuring effect. At 773 K, ZT values of 0.85 and 0.6 are exhibited for Mg2Si0.8Sn0.2 and Mg2Si, respectively. MA is proven to be an advantageous route for the development of Si-rich phases since it provides a better control of doping and higher precision of produced stoichiometric compositions, while in parallel it is a straightforward and scalable method. The replacement of commercial Si by two types of recycled Si-kerf is also attempted here. The kerf-based materials exhibit small reductions in ZT, giving prominence to the efforts to utilize more effectively recyclable Si.

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机械合金化:利用商用硅和可回收硅开发 Mg2Si0.8Sn0.2 和 Mg2Si 热电的优势方法。
对比研究了双掺杂富硅硅化物Mg2Si0.8Sn0.2和Mg2Si,平行研究了两种不同的合成途径:固态反应(SSR)和机械合金化(MA)。两种合成方法都能产生所需的硅化物相。然而,粉末XRD Rietveld细化表明,ssr制备的Mg2Si0.8Sn2有明显的Mg和Sn损失,而EDS测量也证实了Sn损失和Bi含量的降低。这对电输运性质有强烈的影响,表明严重的电子掺杂缺陷。相比之下,ma基相的EDS结果与标称值一致,表明有效的Bi掺杂。此外,考虑到Rietveld细化结果和SEM分析,4b晶体位置Mg间隙原子含量的显著变化似乎与两种MA化合物的微观结构特征有关。电导率和塞贝克系数的测量证实了上述结果。此外,由于纳米结构效应,观察到两种MA体系的晶格热导率略有降低。在773 K时,Mg2Si0.8Sn0.2和Mg2Si的ZT分别为0.85和0.6。MA被证明是发展富硅相的有利途径,因为它提供了更好的掺杂控制和更高的生成化学计量成分的精度,同时它是一种直接和可扩展的方法。本文还尝试用两种可回收的硅片代替商业硅。基于切口的材料显示出ZT的微小减少,突出了更有效地利用可回收硅的努力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
ACS Applied Energy Materials
ACS Applied Energy Materials Materials Science-Materials Chemistry
CiteScore
10.30
自引率
6.20%
发文量
1368
期刊介绍: ACS Applied Energy Materials is an interdisciplinary journal publishing original research covering all aspects of materials, engineering, chemistry, physics and biology relevant to energy conversion and storage. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important energy applications.
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