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Energy filtering and phonon scattering effects in Bi2Te3-PEDOT:PSS composite resulting in enhanced n-type thermoelectric performance
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Title
Energy filtering and phonon scattering effects in Bi2Te3-PEDOT:PSS composite resulting in enhanced n-type thermoelectric performance
Issued Date
2022-02
Citation
Kim, Cham. (2022-02). Energy filtering and phonon scattering effects in Bi2Te3-PEDOT:PSS composite resulting in enhanced n-type thermoelectric performance. Applied Physics Letters, 120(6). doi: 10.1063/5.0076952
Type
Article
Keywords
BISMUTH-TELLURIDENANOSTRUCTURED BI2TE3CONDUCTIVITYFILMSFIGURESILVERMERIT
ISSN
0003-6951
Abstract
We blend n-type Bi2Te3 with an inexpensive abundant conducting polymer, poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS), to gain a bulk-structured composite, in which energy filtering and phonon scattering effects should occur at the interface of two components. The composite records somewhat higher electrical resistivity than pristine Bi2Te3, because the interface possibly interrupts carrier transport. However, the composite completely compensates for the resistivity increment with a significant increase in the Seebeck coefficient, which is caused by energy filtering effects at the interface; thus, it exhibits the improved power factor. The composite also records a much lower thermal conductivity than the pristine Bi2Te3 because of phonon scattering effects at the interface. The composite induces significant decoupling of electrical and thermal properties, thus affording the remarkably enhanced figure of merits (ZTmax ∼1.19 at 132 °C, ZTave ∼1.14 at 50-150 °C), which are approximately double those of the pristine Bi2Te3. The ZT values are not only predominant among the performance of n-type binary Bi2Te3, but they are also as competent as the excellent performance of n-type ternary Bi2(Te,Se)3 previously reported. © 2022 Author(s).
URI
http://hdl.handle.net/20.500.11750/17252
DOI
10.1063/5.0076952
Publisher
American Institute of Physics
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김참
Kim, Cham김참

Division of Nanotechnology

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