Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys

SiGe based thermoelectric (TE) materials have been employed for the past four decades for power generation in radio-isotope thermoelectric generators (RTG). Recently “nanostructuring” has resulted in significantly increasing the figure-of-merit (ZT) of both n and p-type of SiGe and thus nanostructur...

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Main Authors: Sivaiah Bathula, M. Jayasimhadri, Ajay Dhar
Format: Article
Language:English
Published: Elsevier 2015-12-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127515302677
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spelling doaj-1ed8516752f6478e9f1bca6ad9d3ccdf2020-11-24T21:55:11ZengElsevierMaterials & Design0264-12752015-12-0187414420Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloysSivaiah Bathula0M. Jayasimhadri1Ajay Dhar2CSIR—Network of Institutes for Solar Energy, CSIR—National Physical Laboratory, Dr. K. S. Krishnan Marg, New Delhi 110012, India; Department of Applied Physics, Delhi Technological University, Delhi, IndiaDepartment of Applied Physics, Delhi Technological University, Delhi, IndiaCSIR—Network of Institutes for Solar Energy, CSIR—National Physical Laboratory, Dr. K. S. Krishnan Marg, New Delhi 110012, India; Corresponding author.SiGe based thermoelectric (TE) materials have been employed for the past four decades for power generation in radio-isotope thermoelectric generators (RTG). Recently “nanostructuring” has resulted in significantly increasing the figure-of-merit (ZT) of both n and p-type of SiGe and thus nanostructured Si80Ge20 alloys are evolving as a potential replacement for their conventional bulk counterparts in designing efficient RTGs. However, apart from ZT, their mechanical properties are equally important for the long term reliability of their TE modules. Thus, we report the mechanical properties of p-type nanostructured Si80Ge20 alloys, which were synthesized employing spark plasma sintering of mechanically alloyed nanopowders of its constituent elements with 1.2% boron doping. Nanostructured p-type Si80Ge20 alloys exhibited a hardness of ~9 ± 0.1 GPa, an elastic modulus of ~135 ± 1.9 GPa, a compressive strength of 108 ± 0.2 MPa, and fracture toughness of ~1.66 ± 0.04 MPa√m with a thermal shock resistance value of 391 ± 21 Wm−1. This combination of good mechanical properties coupled with higher reported ZT of nanostructured p-type Si80Ge20 alloys are rendered to be a potential material for power generation applications, compared to its bulk counterpart. Keywords: Nanostructured p-type Si80Ge20 alloy, Thermal shock resistance, Fracture toughness, Spark plasma sintering, Compressive strength, Hardness, Elastic modulushttp://www.sciencedirect.com/science/article/pii/S0264127515302677
collection DOAJ
language English
format Article
sources DOAJ
author Sivaiah Bathula
M. Jayasimhadri
Ajay Dhar
spellingShingle Sivaiah Bathula
M. Jayasimhadri
Ajay Dhar
Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
Materials & Design
author_facet Sivaiah Bathula
M. Jayasimhadri
Ajay Dhar
author_sort Sivaiah Bathula
title Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
title_short Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
title_full Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
title_fullStr Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
title_full_unstemmed Mechanical properties and microstructure of spark plasma sintered nanostructured p-type SiGe thermoelectric alloys
title_sort mechanical properties and microstructure of spark plasma sintered nanostructured p-type sige thermoelectric alloys
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2015-12-01
description SiGe based thermoelectric (TE) materials have been employed for the past four decades for power generation in radio-isotope thermoelectric generators (RTG). Recently “nanostructuring” has resulted in significantly increasing the figure-of-merit (ZT) of both n and p-type of SiGe and thus nanostructured Si80Ge20 alloys are evolving as a potential replacement for their conventional bulk counterparts in designing efficient RTGs. However, apart from ZT, their mechanical properties are equally important for the long term reliability of their TE modules. Thus, we report the mechanical properties of p-type nanostructured Si80Ge20 alloys, which were synthesized employing spark plasma sintering of mechanically alloyed nanopowders of its constituent elements with 1.2% boron doping. Nanostructured p-type Si80Ge20 alloys exhibited a hardness of ~9 ± 0.1 GPa, an elastic modulus of ~135 ± 1.9 GPa, a compressive strength of 108 ± 0.2 MPa, and fracture toughness of ~1.66 ± 0.04 MPa√m with a thermal shock resistance value of 391 ± 21 Wm−1. This combination of good mechanical properties coupled with higher reported ZT of nanostructured p-type Si80Ge20 alloys are rendered to be a potential material for power generation applications, compared to its bulk counterpart. Keywords: Nanostructured p-type Si80Ge20 alloy, Thermal shock resistance, Fracture toughness, Spark plasma sintering, Compressive strength, Hardness, Elastic modulus
url http://www.sciencedirect.com/science/article/pii/S0264127515302677
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