Details

Title

Reduction of Thermal Conductivity Through Complex Microstructure by Dispersion of Carbon Nanofiber in p-Type Bi0.5Sb1.5Te3 Alloys

Journal title

Archives of Metallurgy and Materials

Yearbook

2021

Volume

vol. 66

Issue

No 3

Affiliation

Sharief, P. : Kongju National University, Division of Advanced Materials Engineering & Institute for Rare Metals, Cheonan, 331-717, Republic of Korea ; Madavali, B. : Kongju National University, Division of Advanced Materials Engineering & Institute for Rare Metals, Cheonan, 331-717, Republic of Korea ; Sohn, Y. : Chungnam National University, Department of Materials Science & Engineering, Daejeon, 34134, Republic of Korea ; Han, J.H. : Chungnam National University, Department of Materials Science & Engineering, Daejeon, 34134, Republic of Korea ; Song, G. : Kongju National University, Division of Advanced Materials Engineering & Institute for Rare Metals, Cheonan, 331-717, Republic of Korea ; Song, S.H. : Kongju National University, Division of Advanced Materials Engineering & Institute for Rare Metals, Cheonan, 331-717, Republic of Korea ; Song, S.J. : Kongju National University, Division of Advanced Materials Engineering & Institute for Rare Metals, Cheonan, 331-717, Republic of Korea

Authors

Keywords

Bismuth telluride ; Carbon nano fiber ; Grain size ; Thermal conductivity ; ZT

Divisions of PAS

Nauki Techniczne

Coverage

803-808

Publisher

Institute of Metallurgy and Materials Science of Polish Academy of Sciences ; Committee of Materials Engineering and Metallurgy of Polish Academy of Sciences

Bibliography

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[4] H . Mamur, M.R.A Bhuiyan, F. Korkmaz, M. Nil, A review on bismuth telluride (Bi2Te3) nanostructure for thermoelectric applications, Renew. Sust. Energ. Rev. 82, 4159-4169 (2018).
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[16] D.W. Jung, J.H. Jeong, B.C. Cha, J.B. Kim, B.S. Kong, J.K. Lee, E.S. Oh, Effects of ball-milled graphite in the synthesis of SnO2/graphite as an active material in lithium-ion batteries, Met. Mater. Int. 17 (6), 1021-1026 (2011).
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Date

2021.09.06

Type

Article

Identifier

DOI: 10.24425/amm.2021.136384

Source

Archives of Metallurgy and Materials
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