Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition

High-throughput roll-to-roll processing could be used to scale up the manufacture of flexible thermoelectric generators. Very thin thermoelectric layers can be manufactured at high throughput speed and low cost and, most importantly, are predicted to possess better thermoelectric properties than thi...

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Main Authors: Tao, X, Wan, K, Deru, J, Bilotti, E, Assender, H
Format: Journal article
Language:English
Published: Elsevier 2020
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author Tao, X
Wan, K
Deru, J
Bilotti, E
Assender, H
author_facet Tao, X
Wan, K
Deru, J
Bilotti, E
Assender, H
author_sort Tao, X
collection OXFORD
description High-throughput roll-to-roll processing could be used to scale up the manufacture of flexible thermoelectric generators. Very thin thermoelectric layers can be manufactured at high throughput speed and low cost and, most importantly, are predicted to possess better thermoelectric properties than thicker layers. Here we present a study on a series of bismuth telluride films of different thickness (few nm to 370 nm), deposited on polymer substrates at room temperature using DC magnetron sputtering. Unlike previous studies of deposition of bismuth telluride films onto heated substrates, an island-growth mode, indicated by AFM, was observed for Bi-Te films grown at room temperature. A period of growth in which the layer only partially coats the substrate, with only imperfect connections between islands, was observed. In this partially coated region, the coating exhibited an extremely high Seebeck coefficient. An energy barrier mechanism, similar to the interface effect in nanomaterials, is proposed to explain this phenomenon, along with a possible quantum confinement effect. We found that a thinner Bi-Te film could generate a greater power factor because of a quasi-decoupling of Seebeck coefficient and electrical resistivity. In addition, ensuring that the sample passed directly under the sputtering target, and using a substrate smoothed with an acrylate layer were found to improve film properties, thus enhancing thermoelectric behaviour.
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spelling oxford-uuid:56cbefbf-bcbf-427d-90e7-a46f80ab497c2022-03-26T16:52:41ZThermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web depositionJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:56cbefbf-bcbf-427d-90e7-a46f80ab497cEnglishSymplectic ElementsElsevier2020Tao, XWan, KDeru, JBilotti, EAssender, HHigh-throughput roll-to-roll processing could be used to scale up the manufacture of flexible thermoelectric generators. Very thin thermoelectric layers can be manufactured at high throughput speed and low cost and, most importantly, are predicted to possess better thermoelectric properties than thicker layers. Here we present a study on a series of bismuth telluride films of different thickness (few nm to 370 nm), deposited on polymer substrates at room temperature using DC magnetron sputtering. Unlike previous studies of deposition of bismuth telluride films onto heated substrates, an island-growth mode, indicated by AFM, was observed for Bi-Te films grown at room temperature. A period of growth in which the layer only partially coats the substrate, with only imperfect connections between islands, was observed. In this partially coated region, the coating exhibited an extremely high Seebeck coefficient. An energy barrier mechanism, similar to the interface effect in nanomaterials, is proposed to explain this phenomenon, along with a possible quantum confinement effect. We found that a thinner Bi-Te film could generate a greater power factor because of a quasi-decoupling of Seebeck coefficient and electrical resistivity. In addition, ensuring that the sample passed directly under the sputtering target, and using a substrate smoothed with an acrylate layer were found to improve film properties, thus enhancing thermoelectric behaviour.
spellingShingle Tao, X
Wan, K
Deru, J
Bilotti, E
Assender, H
Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title_full Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title_fullStr Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title_full_unstemmed Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title_short Thermoelectric behaviour of Bi-Te films on polymer substrates DC-sputtered at room-temperature in moving web deposition
title_sort thermoelectric behaviour of bi te films on polymer substrates dc sputtered at room temperature in moving web deposition
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AT wank thermoelectricbehaviourofbitefilmsonpolymersubstratesdcsputteredatroomtemperatureinmovingwebdeposition
AT deruj thermoelectricbehaviourofbitefilmsonpolymersubstratesdcsputteredatroomtemperatureinmovingwebdeposition
AT bilottie thermoelectricbehaviourofbitefilmsonpolymersubstratesdcsputteredatroomtemperatureinmovingwebdeposition
AT assenderh thermoelectricbehaviourofbitefilmsonpolymersubstratesdcsputteredatroomtemperatureinmovingwebdeposition