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Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure

[Image: see text] An unusually large thermopower (S) enhancement is induced by heterostructuring thin films of the strongly correlated electron oxide LaNiO(3). The phonon-drag effect, which is not observed in bulk LaNiO(3), enhances S for thin films compressively strained by LaAlO(3) substrates. By...

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Autores principales: Kimura, Masatoshi, He, Xinyi, Katase, Takayoshi, Tadano, Terumasa, Tomczak, Jan M., Minohara, Makoto, Aso, Ryotaro, Yoshida, Hideto, Ide, Keisuke, Ueda, Shigenori, Hiramatsu, Hidenori, Kumigashira, Hiroshi, Hosono, Hideo, Kamiya, Toshio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8587880/
https://www.ncbi.nlm.nih.gov/pubmed/34709840
http://dx.doi.org/10.1021/acs.nanolett.1c03143
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author Kimura, Masatoshi
He, Xinyi
Katase, Takayoshi
Tadano, Terumasa
Tomczak, Jan M.
Minohara, Makoto
Aso, Ryotaro
Yoshida, Hideto
Ide, Keisuke
Ueda, Shigenori
Hiramatsu, Hidenori
Kumigashira, Hiroshi
Hosono, Hideo
Kamiya, Toshio
author_facet Kimura, Masatoshi
He, Xinyi
Katase, Takayoshi
Tadano, Terumasa
Tomczak, Jan M.
Minohara, Makoto
Aso, Ryotaro
Yoshida, Hideto
Ide, Keisuke
Ueda, Shigenori
Hiramatsu, Hidenori
Kumigashira, Hiroshi
Hosono, Hideo
Kamiya, Toshio
author_sort Kimura, Masatoshi
collection PubMed
description [Image: see text] An unusually large thermopower (S) enhancement is induced by heterostructuring thin films of the strongly correlated electron oxide LaNiO(3). The phonon-drag effect, which is not observed in bulk LaNiO(3), enhances S for thin films compressively strained by LaAlO(3) substrates. By a reduction in the layer thickness down to three unit cells and subsequent LaAlO(3) surface termination, a 10 times S enhancement over the bulk value is observed due to large phonon drag S (S(g)), and the S(g) contribution to the total S occurs over a much wider temperature range up to 220 K. The S(g) enhancement originates from the coupling of lattice vibration to the d electrons with large effective mass in the compressively strained ultrathin LaNiO(3), and the electron–phonon interaction is largely enhanced by the phonon leakage from the LaAlO(3) substrate and the capping layer. The transition-metal oxide heterostructures emerge as a new playground to manipulate electronic and phononic properties in the quest for high-performance thermoelectrics.
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spelling pubmed-85878802021-11-12 Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure Kimura, Masatoshi He, Xinyi Katase, Takayoshi Tadano, Terumasa Tomczak, Jan M. Minohara, Makoto Aso, Ryotaro Yoshida, Hideto Ide, Keisuke Ueda, Shigenori Hiramatsu, Hidenori Kumigashira, Hiroshi Hosono, Hideo Kamiya, Toshio Nano Lett [Image: see text] An unusually large thermopower (S) enhancement is induced by heterostructuring thin films of the strongly correlated electron oxide LaNiO(3). The phonon-drag effect, which is not observed in bulk LaNiO(3), enhances S for thin films compressively strained by LaAlO(3) substrates. By a reduction in the layer thickness down to three unit cells and subsequent LaAlO(3) surface termination, a 10 times S enhancement over the bulk value is observed due to large phonon drag S (S(g)), and the S(g) contribution to the total S occurs over a much wider temperature range up to 220 K. The S(g) enhancement originates from the coupling of lattice vibration to the d electrons with large effective mass in the compressively strained ultrathin LaNiO(3), and the electron–phonon interaction is largely enhanced by the phonon leakage from the LaAlO(3) substrate and the capping layer. The transition-metal oxide heterostructures emerge as a new playground to manipulate electronic and phononic properties in the quest for high-performance thermoelectrics. American Chemical Society 2021-10-28 2021-11-10 /pmc/articles/PMC8587880/ /pubmed/34709840 http://dx.doi.org/10.1021/acs.nanolett.1c03143 Text en © 2021 American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Kimura, Masatoshi
He, Xinyi
Katase, Takayoshi
Tadano, Terumasa
Tomczak, Jan M.
Minohara, Makoto
Aso, Ryotaro
Yoshida, Hideto
Ide, Keisuke
Ueda, Shigenori
Hiramatsu, Hidenori
Kumigashira, Hiroshi
Hosono, Hideo
Kamiya, Toshio
Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title_full Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title_fullStr Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title_full_unstemmed Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title_short Large phonon drag thermopower boosted by massive electrons and phonon leaking in LaAlO(3)/LaNiO(3)/LaAlO(3) heterostructure
title_sort large phonon drag thermopower boosted by massive electrons and phonon leaking in laalo(3)/lanio(3)/laalo(3) heterostructure
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8587880/
https://www.ncbi.nlm.nih.gov/pubmed/34709840
http://dx.doi.org/10.1021/acs.nanolett.1c03143
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