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Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite

[Image: see text] Understanding the relationship between the crystal structure, chemical bonding, and lattice dynamics is crucial for the design of materials with low thermal conductivities, which are essential in fields as diverse as thermoelectrics, thermal barrier coatings, and optoelectronics. T...

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Autores principales: Carnevali, Virginia, Mukherjee, Shriparna, Voneshen, David J., Maji, Krishnendu, Guilmeau, Emmanuel, Powell, Anthony V., Vaqueiro, Paz, Fornari, Marco
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10141412/
https://www.ncbi.nlm.nih.gov/pubmed/37053084
http://dx.doi.org/10.1021/jacs.3c02536
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author Carnevali, Virginia
Mukherjee, Shriparna
Voneshen, David J.
Maji, Krishnendu
Guilmeau, Emmanuel
Powell, Anthony V.
Vaqueiro, Paz
Fornari, Marco
author_facet Carnevali, Virginia
Mukherjee, Shriparna
Voneshen, David J.
Maji, Krishnendu
Guilmeau, Emmanuel
Powell, Anthony V.
Vaqueiro, Paz
Fornari, Marco
author_sort Carnevali, Virginia
collection PubMed
description [Image: see text] Understanding the relationship between the crystal structure, chemical bonding, and lattice dynamics is crucial for the design of materials with low thermal conductivities, which are essential in fields as diverse as thermoelectrics, thermal barrier coatings, and optoelectronics. The bismuthinite-aikinite series, Cu(1–x)□(x)Pb(1–x)Bi(1+x)S(3) (0 ≤ x ≤ 1, where □ represents a vacancy), has recently emerged as a family of n-type semiconductors with exceptionally low lattice thermal conductivities. We present a detailed investigation of the structure, electronic properties, and the vibrational spectrum of aikinite, CuPbBiS(3) (x = 0), in order to elucidate the origin of its ultralow thermal conductivity (0.48 W m(–1) K(–1) at 573 K), which is close to the calculated minimum for amorphous and disordered materials, despite its polycrystalline nature. Inelastic neutron scattering data reveal an anharmonic optical phonon mode at ca. 30 cm(–1), attributed mainly to the motion of Pb(2+) cations. Analysis of neutron diffraction data, together with ab-initio molecular dynamics simulations, shows that the Pb(2+) lone pairs are rotating and that, with increasing temperature, Cu(+) and Pb(2+) cations, which are separated at distances of ca. 3.3 Å, exhibit significantly larger displacements from their equilibrium positions than Bi(3+) cations. In addition to bond heterogeneity, a temperature-dependent interaction between Cu(+) and the rotating Pb(2+) lone pair is a key contributor to the scattering effects that lower the thermal conductivity in aikinite. This work demonstrates that coupling of rotating lone pairs and the vibrational motion is an effective mechanism to achieve ultralow thermal conductivity in crystalline materials.
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spelling pubmed-101414122023-04-29 Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite Carnevali, Virginia Mukherjee, Shriparna Voneshen, David J. Maji, Krishnendu Guilmeau, Emmanuel Powell, Anthony V. Vaqueiro, Paz Fornari, Marco J Am Chem Soc [Image: see text] Understanding the relationship between the crystal structure, chemical bonding, and lattice dynamics is crucial for the design of materials with low thermal conductivities, which are essential in fields as diverse as thermoelectrics, thermal barrier coatings, and optoelectronics. The bismuthinite-aikinite series, Cu(1–x)□(x)Pb(1–x)Bi(1+x)S(3) (0 ≤ x ≤ 1, where □ represents a vacancy), has recently emerged as a family of n-type semiconductors with exceptionally low lattice thermal conductivities. We present a detailed investigation of the structure, electronic properties, and the vibrational spectrum of aikinite, CuPbBiS(3) (x = 0), in order to elucidate the origin of its ultralow thermal conductivity (0.48 W m(–1) K(–1) at 573 K), which is close to the calculated minimum for amorphous and disordered materials, despite its polycrystalline nature. Inelastic neutron scattering data reveal an anharmonic optical phonon mode at ca. 30 cm(–1), attributed mainly to the motion of Pb(2+) cations. Analysis of neutron diffraction data, together with ab-initio molecular dynamics simulations, shows that the Pb(2+) lone pairs are rotating and that, with increasing temperature, Cu(+) and Pb(2+) cations, which are separated at distances of ca. 3.3 Å, exhibit significantly larger displacements from their equilibrium positions than Bi(3+) cations. In addition to bond heterogeneity, a temperature-dependent interaction between Cu(+) and the rotating Pb(2+) lone pair is a key contributor to the scattering effects that lower the thermal conductivity in aikinite. This work demonstrates that coupling of rotating lone pairs and the vibrational motion is an effective mechanism to achieve ultralow thermal conductivity in crystalline materials. American Chemical Society 2023-04-13 /pmc/articles/PMC10141412/ /pubmed/37053084 http://dx.doi.org/10.1021/jacs.3c02536 Text en © 2023 The Authors. Published by 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 Carnevali, Virginia
Mukherjee, Shriparna
Voneshen, David J.
Maji, Krishnendu
Guilmeau, Emmanuel
Powell, Anthony V.
Vaqueiro, Paz
Fornari, Marco
Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title_full Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title_fullStr Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title_full_unstemmed Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title_short Lone Pair Rotation and Bond Heterogeneity Leading to Ultralow Thermal Conductivity in Aikinite
title_sort lone pair rotation and bond heterogeneity leading to ultralow thermal conductivity in aikinite
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10141412/
https://www.ncbi.nlm.nih.gov/pubmed/37053084
http://dx.doi.org/10.1021/jacs.3c02536
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