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High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane

Thermo-Electrochemical cells (Thermocells/TECs) transform thermal energy into electricity by means of electrochemical potential disequilibrium between electrodes induced by a temperature gradient (ΔT). Heat conduction across the terminals of the cell is one of the primary reasons for device ineffici...

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Autores principales: Hasan, Syed Waqar, Said, Suhana Mohd, Sabri, Mohd Faizul Mohd, Bakar, Ahmad Shuhaimi Abu, Hashim, Nur Awanis, Hasnan, Megat Muhammad Ikhsan Megat, Pringle, Jennifer M., MacFarlane, Douglas R.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4933890/
https://www.ncbi.nlm.nih.gov/pubmed/27381946
http://dx.doi.org/10.1038/srep29328
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author Hasan, Syed Waqar
Said, Suhana Mohd
Sabri, Mohd Faizul Mohd
Bakar, Ahmad Shuhaimi Abu
Hashim, Nur Awanis
Hasnan, Megat Muhammad Ikhsan Megat
Pringle, Jennifer M.
MacFarlane, Douglas R.
author_facet Hasan, Syed Waqar
Said, Suhana Mohd
Sabri, Mohd Faizul Mohd
Bakar, Ahmad Shuhaimi Abu
Hashim, Nur Awanis
Hasnan, Megat Muhammad Ikhsan Megat
Pringle, Jennifer M.
MacFarlane, Douglas R.
author_sort Hasan, Syed Waqar
collection PubMed
description Thermo-Electrochemical cells (Thermocells/TECs) transform thermal energy into electricity by means of electrochemical potential disequilibrium between electrodes induced by a temperature gradient (ΔT). Heat conduction across the terminals of the cell is one of the primary reasons for device inefficiency. Herein, we embed Poly(Vinylidene Fluoride) (PVDF) membrane in thermocells to mitigate the heat transfer effects - we refer to these membrane-thermocells as MTECs. At a ΔT of 12 K, an improvement in the open circuit voltage (V(oc)) of the TEC from 1.3 mV to 2.8 mV is obtained by employment of the membrane. The PVDF membrane is employed at three different locations between the electrodes i.e. x = 2 mm, 5 mm, and 8 mm where ‘x’ defines the distance between the cathode and PVDF membrane. We found that the membrane position at x = 5 mm achieves the closest internal ∆T (i.e. 8.8 K) to the externally applied ΔT of 10 K and corresponding power density is 254 nWcm(−2); 78% higher than the conventional TEC. Finally, a thermal resistivity model based on infrared thermography explains mass and heat transfer within the thermocells.
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spelling pubmed-49338902016-07-08 High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane Hasan, Syed Waqar Said, Suhana Mohd Sabri, Mohd Faizul Mohd Bakar, Ahmad Shuhaimi Abu Hashim, Nur Awanis Hasnan, Megat Muhammad Ikhsan Megat Pringle, Jennifer M. MacFarlane, Douglas R. Sci Rep Article Thermo-Electrochemical cells (Thermocells/TECs) transform thermal energy into electricity by means of electrochemical potential disequilibrium between electrodes induced by a temperature gradient (ΔT). Heat conduction across the terminals of the cell is one of the primary reasons for device inefficiency. Herein, we embed Poly(Vinylidene Fluoride) (PVDF) membrane in thermocells to mitigate the heat transfer effects - we refer to these membrane-thermocells as MTECs. At a ΔT of 12 K, an improvement in the open circuit voltage (V(oc)) of the TEC from 1.3 mV to 2.8 mV is obtained by employment of the membrane. The PVDF membrane is employed at three different locations between the electrodes i.e. x = 2 mm, 5 mm, and 8 mm where ‘x’ defines the distance between the cathode and PVDF membrane. We found that the membrane position at x = 5 mm achieves the closest internal ∆T (i.e. 8.8 K) to the externally applied ΔT of 10 K and corresponding power density is 254 nWcm(−2); 78% higher than the conventional TEC. Finally, a thermal resistivity model based on infrared thermography explains mass and heat transfer within the thermocells. Nature Publishing Group 2016-07-06 /pmc/articles/PMC4933890/ /pubmed/27381946 http://dx.doi.org/10.1038/srep29328 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Hasan, Syed Waqar
Said, Suhana Mohd
Sabri, Mohd Faizul Mohd
Bakar, Ahmad Shuhaimi Abu
Hashim, Nur Awanis
Hasnan, Megat Muhammad Ikhsan Megat
Pringle, Jennifer M.
MacFarlane, Douglas R.
High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title_full High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title_fullStr High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title_full_unstemmed High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title_short High Thermal Gradient in Thermo-electrochemical Cells by Insertion of a Poly(Vinylidene Fluoride) Membrane
title_sort high thermal gradient in thermo-electrochemical cells by insertion of a poly(vinylidene fluoride) membrane
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4933890/
https://www.ncbi.nlm.nih.gov/pubmed/27381946
http://dx.doi.org/10.1038/srep29328
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