Saved in:
Bibliographic Details
Main Authors: Suprayoga, E., Putri, W. B. K., Singsoog, K., Paengson, S., Hanna, M. Y., Nugraha, A. R. T., Munazat, D. R., Kurniawan, B., Nurhuda, M., Seetawan, T., Hasdeo, E. H.
Format: Preprint
Published: 2020
Subjects:
Online Access:https://arxiv.org/abs/2001.08443
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866914651559690240
author Suprayoga, E.
Putri, W. B. K.
Singsoog, K.
Paengson, S.
Hanna, M. Y.
Nugraha, A. R. T.
Munazat, D. R.
Kurniawan, B.
Nurhuda, M.
Seetawan, T.
Hasdeo, E. H.
author_facet Suprayoga, E.
Putri, W. B. K.
Singsoog, K.
Paengson, S.
Hanna, M. Y.
Nugraha, A. R. T.
Munazat, D. R.
Kurniawan, B.
Nurhuda, M.
Seetawan, T.
Hasdeo, E. H.
contents Electron and phonon transports in CaMnO3 and its Bi-doped counterpart, Bi0.03Ca0.97MnO3, are investigated by thermoelectric transport measurements, Raman spectroscopy, and first-principles calculations. In particular, we focus on CaMnO3 and Bi0.03Ca0.97MnO3's electronic structures, temperature-dependent electron and phonon lifetimes, and their sound velocities. We find that the anti-ferromagnetic insulator CaMnO3 breaks the Wiedemann-Franz (WF) law with the Lorenz number reaching four times that of ordinary metals at room temperature. Bismuth doping reduces both the electrical resistivity and the Seebeck coefficient of CaMnO3, thus it recovers the WF law behavior. Raman spectroscopy confirms that Bi0.03Ca0.97MnO3 has a lower Debye frequency as well as a shorter phonon lifetime. As a result, Bi0.03Ca0.97MnO3 exhibits superior thermoelectric properties over the pristine CaMnO3 due to the lower thermal conductivity and electronic resistivity.
format Preprint
id arxiv_https___arxiv_org_abs_2001_08443
institution arXiv
publishDate 2020
record_format arxiv
spellingShingle Investigation of electron and phonon transport in Bi-doped CaMnO$_3$ for thermoelectric applications
Suprayoga, E.
Putri, W. B. K.
Singsoog, K.
Paengson, S.
Hanna, M. Y.
Nugraha, A. R. T.
Munazat, D. R.
Kurniawan, B.
Nurhuda, M.
Seetawan, T.
Hasdeo, E. H.
Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
Electron and phonon transports in CaMnO3 and its Bi-doped counterpart, Bi0.03Ca0.97MnO3, are investigated by thermoelectric transport measurements, Raman spectroscopy, and first-principles calculations. In particular, we focus on CaMnO3 and Bi0.03Ca0.97MnO3's electronic structures, temperature-dependent electron and phonon lifetimes, and their sound velocities. We find that the anti-ferromagnetic insulator CaMnO3 breaks the Wiedemann-Franz (WF) law with the Lorenz number reaching four times that of ordinary metals at room temperature. Bismuth doping reduces both the electrical resistivity and the Seebeck coefficient of CaMnO3, thus it recovers the WF law behavior. Raman spectroscopy confirms that Bi0.03Ca0.97MnO3 has a lower Debye frequency as well as a shorter phonon lifetime. As a result, Bi0.03Ca0.97MnO3 exhibits superior thermoelectric properties over the pristine CaMnO3 due to the lower thermal conductivity and electronic resistivity.
title Investigation of electron and phonon transport in Bi-doped CaMnO$_3$ for thermoelectric applications
topic Mesoscale and Nanoscale Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2001.08443