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      KCI등재 SCOPUS SCIE

      Facile synthesis of nanostructured n-type SiGe alloys with enhanced thermoelectric performance using rapid solidification employing melt spinning followed by spark plasma sintering

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      https://www.riss.kr/link?id=A105960045

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      다국어 초록 (Multilingual Abstract)

      SiGe alloy is widely used thermoelectric materials for high temperature thermoelectric generator applications.
      However, its high thermoelectric performance has been thus far realized only in alloys synthesized employing mechanical alloying techniques, which are time-consuming and employ several materials processing steps. In the current study, for the first time, we report an enhanced thermoelectric figure-of-merit (ZT)∼1.1 at 900 °C in ntype Si80Ge20 nano-alloys, synthesized using a facile and up-scalable methodology consisting of rapid solidification at high optimized cooling rate∼3.4×107 K/s, employing melt spinning followed by spark plasma sintering of the resulting nano-crystalline melt-spun ribbons. This enhancement in ZT>20% over its bulk counterpart, owes its origin to the nano-crystalline microstructure formed at high cooling rates, which results in crystallite size ∼7 nm leading to high density of grain boundaries, which scatter heat-carrying phonons. This abundant scattering resulted in a very low thermal conductivity ∼2.1 Wm−1K−1, which corresponds to ∼50% reduction over its bulk counterpart and is amongst the lowest reported thus far in n-type SiGe alloys. The synthesized samples were characterized using X-ray diffraction, scanning electron microscopy and transmission electron microscopy, based on which the enhancement in their thermoelectric performance has been discussed.
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      SiGe alloy is widely used thermoelectric materials for high temperature thermoelectric generator applications. However, its high thermoelectric performance has been thus far realized only in alloys synthesized employing mechanical alloying techniques...

      SiGe alloy is widely used thermoelectric materials for high temperature thermoelectric generator applications.
      However, its high thermoelectric performance has been thus far realized only in alloys synthesized employing mechanical alloying techniques, which are time-consuming and employ several materials processing steps. In the current study, for the first time, we report an enhanced thermoelectric figure-of-merit (ZT)∼1.1 at 900 °C in ntype Si80Ge20 nano-alloys, synthesized using a facile and up-scalable methodology consisting of rapid solidification at high optimized cooling rate∼3.4×107 K/s, employing melt spinning followed by spark plasma sintering of the resulting nano-crystalline melt-spun ribbons. This enhancement in ZT>20% over its bulk counterpart, owes its origin to the nano-crystalline microstructure formed at high cooling rates, which results in crystallite size ∼7 nm leading to high density of grain boundaries, which scatter heat-carrying phonons. This abundant scattering resulted in a very low thermal conductivity ∼2.1 Wm−1K−1, which corresponds to ∼50% reduction over its bulk counterpart and is amongst the lowest reported thus far in n-type SiGe alloys. The synthesized samples were characterized using X-ray diffraction, scanning electron microscopy and transmission electron microscopy, based on which the enhancement in their thermoelectric performance has been discussed.

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      참고문헌 (Reference)

      1 S. R. Brown, "Yb14MnSb11: new high efficiency thermoelectric material for power generation" 18 : 1873-1877, 2006

      2 N. S. Chauhan, "Vanadium-doping-induced resonant energy levels for the enhancement of thermoelectric performance in Hf-free ZrNiSn half-Heusler alloys" 1 : 757-764, 2018

      3 Tawat Suriwong, "Thermoelectric and optical properties of CuAlO2 synthesized by direct microwave heating" 한국물리학회 14 (14): 1257-1262, 2014

      4 A. Kallel, "Thermoelectric and mechanical properties of a hot pressed nanostructured n-type Si80Ge20 alloy" 564 : 65-70, 2013

      5 S. Bathula, "The role of nanoscale defect features in enhancing the thermoelectric performance of p-type nanostructured SiGe alloys" 7 : 12474-12483, 2015

      6 L. -D. Zhao, "The panoscopic approach to high performance thermoelectrics" 7 : 251-268, 2014

      7 Z. Zamanipour, "The effect of synthesis parameters on transport properties of nanostructured bulk thermoelectric p‐type silicon germanium alloy" 209 : 2049-2058, 2012

      8 B. Khasimsaheb, "The effect of carbon nanotubes (CNT) on thermoelectric properties of lead telluride (PbTe) nanocubes" 한국물리학회 17 (17): 306-313, 2017

      9 J. E. Bernard, "Strain energy and stability of Si-Ge compounds, alloys, and superlattices" 44 : 1663-1681, 1991

      10 S. Muthiah, "Significant enhancement in thermoelectric performance of nanostructured higher manganese silicides synthesized employing a melt spinning technique" 10 : 1970-1977, 2018

      1 S. R. Brown, "Yb14MnSb11: new high efficiency thermoelectric material for power generation" 18 : 1873-1877, 2006

      2 N. S. Chauhan, "Vanadium-doping-induced resonant energy levels for the enhancement of thermoelectric performance in Hf-free ZrNiSn half-Heusler alloys" 1 : 757-764, 2018

      3 Tawat Suriwong, "Thermoelectric and optical properties of CuAlO2 synthesized by direct microwave heating" 한국물리학회 14 (14): 1257-1262, 2014

      4 A. Kallel, "Thermoelectric and mechanical properties of a hot pressed nanostructured n-type Si80Ge20 alloy" 564 : 65-70, 2013

      5 S. Bathula, "The role of nanoscale defect features in enhancing the thermoelectric performance of p-type nanostructured SiGe alloys" 7 : 12474-12483, 2015

      6 L. -D. Zhao, "The panoscopic approach to high performance thermoelectrics" 7 : 251-268, 2014

      7 Z. Zamanipour, "The effect of synthesis parameters on transport properties of nanostructured bulk thermoelectric p‐type silicon germanium alloy" 209 : 2049-2058, 2012

      8 B. Khasimsaheb, "The effect of carbon nanotubes (CNT) on thermoelectric properties of lead telluride (PbTe) nanocubes" 한국물리학회 17 (17): 306-313, 2017

      9 J. E. Bernard, "Strain energy and stability of Si-Ge compounds, alloys, and superlattices" 44 : 1663-1681, 1991

      10 S. Muthiah, "Significant enhancement in thermoelectric performance of nanostructured higher manganese silicides synthesized employing a melt spinning technique" 10 : 1970-1977, 2018

      11 D.L. Harame, "SiGe and Ge: materials, processing, and devices" The Electrochemical Society 2006

      12 E. Steigmeier, "Scattering of phonons by electrons in germanium-silicon alloys" 136 : A1149-, 1964

      13 J. W. Fergus, "Oxide materials for high temperature thermoelectric energy conversion" 32 : 525-540, 2012

      14 P. F. Poudeu, "Nanostructures versus solid solutions: low lattice thermal conductivity and enhanced thermoelectric figure of merit in Pb9.6Sb0.2Te10-x Sex bulk materials" 128 : 14347-14355, 2006

      15 T. Harman, "Nanostructured thermoelectric materials" 34 : L19-L22, 2005

      16 R. Basu, "Improved thermoelectric performance of hot pressed nanostructured n-type SiGe bulk alloys" 2 : 6922-6930, 2014

      17 K. Biswas, "High-performance bulk thermoelectrics with all-scale hierarchical architectures" 489 : 414-, 2012

      18 E. S. Toberer, "High temperature thermoelectric efficiency in Ba8Ga16Ge30" 77 : 075203-, 2008

      19 M. Bilal Saddique, "Ground state opto-electronic and thermoelectric response of cubic XSnO3 (X = Ba, Sr) compounds" 한국물리학회 17 (17): 1079-1086, 2017

      20 Y. Lan, "Enhancement of thermoelectric figure‐of‐merit by a bulk nanostructuring approach" 20 : 357-376, 2010

      21 X. Wang, "Enhanced thermoelectric figureof merit in nanostructured n-type silicon germanium bulk alloy" 93 : 193121-, 2008

      22 S. Bathula, "Enhanced thermoelectric figure-of-merit in spark plasma sintered nanostructured n-type SiGe alloys" 101 : 213902-, 2012

      23 B. D. Cullity, "Elements of X-ray diffraction" 25 : 394-395, 1957

      24 S.R. Culp, "Effect of substitutions on the thermoelectric figureofmerit of half-Heusler phases at 800 C" 88 : 042106-, 2006

      25 V. Tkatch, "Direct measurements of the cooling rates in the single roller rapid solidification technique" 45 : 2821-2826, 1997

      26 N. S. Chauhan, "Compositional tuning of ZrNiSn half-Heusler alloys: thermoelectric characteristics and performance analysis" 123 : 105-112, 2018

      27 Z. Zamanipour, "Comparison of thermoelectric properties of p-type nanostructured bulk Si0. 8Ge0. 2 alloy with Si0. 8Ge0. 2 composites embedded with CrSi2 nano-inclusisons" 112 : 093714-, 2012

      28 H. -S. Kim, "Characterization of Lorenz number with Seebeck coefficient measurement" 3 : 041506-, 2015

      29 D. M. Rowe, "CRC Handbook of Thermoelectrics" CRC press 1995

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      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2008-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2007-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2003-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 1.8 0.18 1.17
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.92 0.77 0.297 0.1
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