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정밀한 Pb 도핑을 통한 Bi0.5Sb1.5Te3의 열전 성능 향상: Single Parabolic Band 모델을 이용한 분석Enhanced Thermoelectric Performance of Bi0.5Sb1.5Te3 through Precise Pb Doping: Analysis Using the Single Parabolic Band Model

Other Titles
Enhanced Thermoelectric Performance of Bi0.5Sb1.5Te3 through Precise Pb Doping: Analysis Using the Single Parabolic Band Model
Authors
강지원황성미김세윤이창우서원선김상일김현식
Issue Date
Oct-2024
Publisher
대한금속·재료학회
Keywords
thermoelectric; B-factor; weighted mobility; single parabolic band model; Callaway-von Baeyer model
Citation
대한금속·재료학회지, v.62, no.10, pp 787 - 795
Pages
9
Indexed
SCIE
SCOPUS
KCI
Journal Title
대한금속·재료학회지
Volume
62
Number
10
Start Page
787
End Page
795
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/74634
DOI
10.3365/KJMM.2024.62.10.787
ISSN
1738-8228
2288-8241
Abstract
This study investigates the thermoelectric properties of Pb-doped p-type Bi0.5Sb1.5Te3 alloys usingthe Single Parabolic Band (SPB) model, focusing on optimizing room-temperature performance. Wesystematically analyze the effects of Pb doping (0, 0.49, 0.65, 0.81, 0.97, and 1.3 at%) on key parametersincluding density-of-states effective mass (md*), non-degenerate mobility (μ0), weighted mobility (μW), andthe thermoelectric quality factor (B-factor) at 323 K. The results reveal that md* reaches a maximum of1.37 me at 0.97 at% Pb doping, representing a 22.25 % increase over the pristine sample. The highest μ0of 234.5 cm2 V-1 s-1 is achieved at 0.65 at% Pb, highlighting the complex relationship between doping andcarrier mobility. Notably, 0.97 at% Pb doping optimizes thermoelectric performance, yielding the highestμW, power factor, and B-factor. This composition also minimizes lattice thermal conductivity (κl) by 44.93% compared to the undoped sample, significantly reducing phonon heat conduction. The Callaway-vonBaeyer model corroborates these findings, indicating maximized point defect scattering at 0.97 at% Pb. Atheoretical peak figure-of-merit (zT) of 1.74 is thus predicted at this doping level, demonstrating a possiblesubstantial enhancement in thermoelectric efficiency upon appropriate carrier concentration tuning. Theobserved trends in Seebeck coefficient, Hall carrier concentration, and Hall mobility with increasing Pbcontent provide insights into the underlying mechanisms of performance enhancement. This comprehensivestudy highlights the critical role of precise Pb doping in optimizing the thermoelectric properties ofBi0.5Sb1.5Te3 alloys for room-temperature applications and establishes a framework for future investigationsinto similar material systems.
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