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The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals

Copper and silver based chalcogenides, chalco-halides, and halides form a unique class of semiconductors, as they display mixed ionic and electronic conduction in their superionic phase. These compounds are composed of softly coupled cationic and anionic substructures, and undergo a transition to a...

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Autores principales: Guin, Satya N., Sanyal, Dirtha, Biswas, Kanishka
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5952868/
https://www.ncbi.nlm.nih.gov/pubmed/29896345
http://dx.doi.org/10.1039/c5sc02966j
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author Guin, Satya N.
Sanyal, Dirtha
Biswas, Kanishka
author_facet Guin, Satya N.
Sanyal, Dirtha
Biswas, Kanishka
author_sort Guin, Satya N.
collection PubMed
description Copper and silver based chalcogenides, chalco-halides, and halides form a unique class of semiconductors, as they display mixed ionic and electronic conduction in their superionic phase. These compounds are composed of softly coupled cationic and anionic substructures, and undergo a transition to a superionic phase displaying changes in the substructure of their mobile ions with varying temperature. Here, we demonstrate a facile, ambient and capping agent free solution based synthesis of AgCuS nanocrystals and their temperature dependent (300–550 K) thermoelectric properties. AgCuS is known to show fascinating p–n–p type conduction switching in its bulk polycrystalline form. Temperature dependent synchrotron powder X-ray diffraction, heat capacity and Raman spectroscopy measurements indicate the observation of two superionic phase transitions, from a room temperature ordered orthorhombic (β) to a partially disordered hexagonal (α) phase at ∼365 K and from the hexagonal (α) to a fully disordered cubic (δ) phase at ∼439 K, in nanocrystalline AgCuS. The size reduction to the nanoscale resulted in a large variation in the thermoelectric properties compared to its bulk counterpart. Temperature dependent Seebeck coefficient measurements indicate that the nanocrystalline AgCuS does not display the p–n–p type conduction switching property like its bulk form, but remains p-type throughout the measured temperature range due to the presence of excess localized Ag vacancies. Nanocrystalline AgCuS exhibits a wider electronic band gap (∼1.2 eV) compared to that of the bulk AgCuS (∼0.9 eV), which is not sufficient to close the band gap to form a semimetallic intermediate state during the orthorhombic to hexagonal superionic phase transition, thus AgCuS nanocrystals do not show conduction type switching properties like their bulk counterpart. The present study demonstrates that ambient solution phase synthesis and size reduction to the nanoscale can tailor the order–disorder phase transition, the band gap and the electronic conduction properties in superionic compounds, which will not only enrich solid-state inorganic chemistry but also open a new avenue to design multifunctional materials.
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spelling pubmed-59528682018-06-12 The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals Guin, Satya N. Sanyal, Dirtha Biswas, Kanishka Chem Sci Chemistry Copper and silver based chalcogenides, chalco-halides, and halides form a unique class of semiconductors, as they display mixed ionic and electronic conduction in their superionic phase. These compounds are composed of softly coupled cationic and anionic substructures, and undergo a transition to a superionic phase displaying changes in the substructure of their mobile ions with varying temperature. Here, we demonstrate a facile, ambient and capping agent free solution based synthesis of AgCuS nanocrystals and their temperature dependent (300–550 K) thermoelectric properties. AgCuS is known to show fascinating p–n–p type conduction switching in its bulk polycrystalline form. Temperature dependent synchrotron powder X-ray diffraction, heat capacity and Raman spectroscopy measurements indicate the observation of two superionic phase transitions, from a room temperature ordered orthorhombic (β) to a partially disordered hexagonal (α) phase at ∼365 K and from the hexagonal (α) to a fully disordered cubic (δ) phase at ∼439 K, in nanocrystalline AgCuS. The size reduction to the nanoscale resulted in a large variation in the thermoelectric properties compared to its bulk counterpart. Temperature dependent Seebeck coefficient measurements indicate that the nanocrystalline AgCuS does not display the p–n–p type conduction switching property like its bulk form, but remains p-type throughout the measured temperature range due to the presence of excess localized Ag vacancies. Nanocrystalline AgCuS exhibits a wider electronic band gap (∼1.2 eV) compared to that of the bulk AgCuS (∼0.9 eV), which is not sufficient to close the band gap to form a semimetallic intermediate state during the orthorhombic to hexagonal superionic phase transition, thus AgCuS nanocrystals do not show conduction type switching properties like their bulk counterpart. The present study demonstrates that ambient solution phase synthesis and size reduction to the nanoscale can tailor the order–disorder phase transition, the band gap and the electronic conduction properties in superionic compounds, which will not only enrich solid-state inorganic chemistry but also open a new avenue to design multifunctional materials. Royal Society of Chemistry 2016-01-01 2015-10-08 /pmc/articles/PMC5952868/ /pubmed/29896345 http://dx.doi.org/10.1039/c5sc02966j Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Guin, Satya N.
Sanyal, Dirtha
Biswas, Kanishka
The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title_full The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title_fullStr The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title_full_unstemmed The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title_short The effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of AgCuS nanocrystals
title_sort effect of order–disorder phase transitions and band gap evolution on the thermoelectric properties of agcus nanocrystals
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5952868/
https://www.ncbi.nlm.nih.gov/pubmed/29896345
http://dx.doi.org/10.1039/c5sc02966j
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