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Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping

Enhancing electron correlation in a weakly interacting topological system has great potential to promote correlated topological states of matter with extraordinary quantum properties. Here, the enhancement of electron correlation in a prototypical topological metal, namely iridium dioxide (IrO(2)),...

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Autores principales: Coughlin, Amanda L., Pan, Zhiliang, Hong, Jeonghoon, Zhang, Tongxie, Zhan, Xun, Wu, Wenqian, Xie, Dongyue, Tong, Tian, Ruch, Thomas, Heremans, Jean J., Bao, Jiming, Fertig, Herbert A., Wang, Jian, Kim, Jeongwoo, Zhu, Hanyu, Li, Deyu, Zhang, Shixiong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9839858/
https://www.ncbi.nlm.nih.gov/pubmed/36437041
http://dx.doi.org/10.1002/advs.202204424
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author Coughlin, Amanda L.
Pan, Zhiliang
Hong, Jeonghoon
Zhang, Tongxie
Zhan, Xun
Wu, Wenqian
Xie, Dongyue
Tong, Tian
Ruch, Thomas
Heremans, Jean J.
Bao, Jiming
Fertig, Herbert A.
Wang, Jian
Kim, Jeongwoo
Zhu, Hanyu
Li, Deyu
Zhang, Shixiong
author_facet Coughlin, Amanda L.
Pan, Zhiliang
Hong, Jeonghoon
Zhang, Tongxie
Zhan, Xun
Wu, Wenqian
Xie, Dongyue
Tong, Tian
Ruch, Thomas
Heremans, Jean J.
Bao, Jiming
Fertig, Herbert A.
Wang, Jian
Kim, Jeongwoo
Zhu, Hanyu
Li, Deyu
Zhang, Shixiong
author_sort Coughlin, Amanda L.
collection PubMed
description Enhancing electron correlation in a weakly interacting topological system has great potential to promote correlated topological states of matter with extraordinary quantum properties. Here, the enhancement of electron correlation in a prototypical topological metal, namely iridium dioxide (IrO(2)), via doping with 3d transition metal vanadium is demonstrated. Single‐crystalline vanadium‐doped IrO(2) nanowires are synthesized through chemical vapor deposition where the nanowire yield and morphology are improved by creating rough surfaces on substrates. Vanadium doping leads to a dramatic decrease in Raman intensity without notable peak broadening, signifying the enhancement of electron correlation. The enhanced electron correlation is further evidenced by transport studies where the electrical resistivity is greatly increased and follows an unusual [Formula: see text] dependence on the temperature (T). The lattice thermal conductivity is suppressed by an order of magnitude via doping even at room temperature where phonon‐impurity scattering becomes less important. Density functional theory calculations suggest that the remarkable reduction of thermal conductivity arises from the complex phonon dispersion and reduced energy gap between phonon branches, which greatly enhances phase space for phonon–phonon Umklapp scattering. This work demonstrates a unique system combining 3d and 5d transition metals in isostructural materials to enrich the system with various types of interactions.
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spelling pubmed-98398582023-01-18 Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping Coughlin, Amanda L. Pan, Zhiliang Hong, Jeonghoon Zhang, Tongxie Zhan, Xun Wu, Wenqian Xie, Dongyue Tong, Tian Ruch, Thomas Heremans, Jean J. Bao, Jiming Fertig, Herbert A. Wang, Jian Kim, Jeongwoo Zhu, Hanyu Li, Deyu Zhang, Shixiong Adv Sci (Weinh) Research Articles Enhancing electron correlation in a weakly interacting topological system has great potential to promote correlated topological states of matter with extraordinary quantum properties. Here, the enhancement of electron correlation in a prototypical topological metal, namely iridium dioxide (IrO(2)), via doping with 3d transition metal vanadium is demonstrated. Single‐crystalline vanadium‐doped IrO(2) nanowires are synthesized through chemical vapor deposition where the nanowire yield and morphology are improved by creating rough surfaces on substrates. Vanadium doping leads to a dramatic decrease in Raman intensity without notable peak broadening, signifying the enhancement of electron correlation. The enhanced electron correlation is further evidenced by transport studies where the electrical resistivity is greatly increased and follows an unusual [Formula: see text] dependence on the temperature (T). The lattice thermal conductivity is suppressed by an order of magnitude via doping even at room temperature where phonon‐impurity scattering becomes less important. Density functional theory calculations suggest that the remarkable reduction of thermal conductivity arises from the complex phonon dispersion and reduced energy gap between phonon branches, which greatly enhances phase space for phonon–phonon Umklapp scattering. This work demonstrates a unique system combining 3d and 5d transition metals in isostructural materials to enrich the system with various types of interactions. John Wiley and Sons Inc. 2022-11-27 /pmc/articles/PMC9839858/ /pubmed/36437041 http://dx.doi.org/10.1002/advs.202204424 Text en © 2022 The Authors. Advanced Science published by Wiley‐VCH GmbH https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Coughlin, Amanda L.
Pan, Zhiliang
Hong, Jeonghoon
Zhang, Tongxie
Zhan, Xun
Wu, Wenqian
Xie, Dongyue
Tong, Tian
Ruch, Thomas
Heremans, Jean J.
Bao, Jiming
Fertig, Herbert A.
Wang, Jian
Kim, Jeongwoo
Zhu, Hanyu
Li, Deyu
Zhang, Shixiong
Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title_full Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title_fullStr Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title_full_unstemmed Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title_short Enhanced Electron Correlation and Significantly Suppressed Thermal Conductivity in Dirac Nodal‐Line Metal Nanowires by Chemical Doping
title_sort enhanced electron correlation and significantly suppressed thermal conductivity in dirac nodal‐line metal nanowires by chemical doping
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9839858/
https://www.ncbi.nlm.nih.gov/pubmed/36437041
http://dx.doi.org/10.1002/advs.202204424
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