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A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage

Attaining compact energy storage under extreme temperature conditions is of paramount importance in the development of advanced dielectric materials. The polymer composite approach has proved effective towards this goal, and addressing the correlation between filler distribution and electrical prope...

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Autores principales: Li, Manxi, Zhu, Yujie, Wang, Rui, Fu, Jing, Ran, Zhaoyu, Yang, Mingcong, Li, Junluo, Hu, Jun, He, Jinliang, Li, Qi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10502658/
https://www.ncbi.nlm.nih.gov/pubmed/37452383
http://dx.doi.org/10.1002/advs.202302949
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author Li, Manxi
Zhu, Yujie
Wang, Rui
Fu, Jing
Ran, Zhaoyu
Yang, Mingcong
Li, Junluo
Hu, Jun
He, Jinliang
Li, Qi
author_facet Li, Manxi
Zhu, Yujie
Wang, Rui
Fu, Jing
Ran, Zhaoyu
Yang, Mingcong
Li, Junluo
Hu, Jun
He, Jinliang
Li, Qi
author_sort Li, Manxi
collection PubMed
description Attaining compact energy storage under extreme temperature conditions is of paramount importance in the development of advanced dielectric materials. The polymer composite approach has proved effective towards this goal, and addressing the correlation between filler distribution and electrical properties is foremost in designing composite dielectrics, especially in multifiller systems. Here, the design of a bi‐gradient polymer composite dielectric using an integrated framework based on the phase field model is reported. This framework can predict the charge‐inhibiting behavior of composite dielectrics, which is a key factor impacting the high‐temperature capacitive performance but unfortunately is ignored in conventional phase field models. It is found that due to the traps provided by the functional organic fillers, more carriers are trapped near the electrodes and weaken the electric field, thus significantly suppressing the breakdown initialization process. An interpenetrating gradient structure is designed rationally and synthesized experimentally, which exhibits concurrent high energy density (5.51 J cm(−3)) and high charge‐discharge efficiency (90%) up to 200 °C. This work provides a strategy to predict the high‐temperature energy storage performance of polymer composites containing charge‐inhibiting components and helps broaden the scope of data‐driven materials design based on phase‐field modeling.
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spelling pubmed-105026582023-09-16 A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage Li, Manxi Zhu, Yujie Wang, Rui Fu, Jing Ran, Zhaoyu Yang, Mingcong Li, Junluo Hu, Jun He, Jinliang Li, Qi Adv Sci (Weinh) Research Articles Attaining compact energy storage under extreme temperature conditions is of paramount importance in the development of advanced dielectric materials. The polymer composite approach has proved effective towards this goal, and addressing the correlation between filler distribution and electrical properties is foremost in designing composite dielectrics, especially in multifiller systems. Here, the design of a bi‐gradient polymer composite dielectric using an integrated framework based on the phase field model is reported. This framework can predict the charge‐inhibiting behavior of composite dielectrics, which is a key factor impacting the high‐temperature capacitive performance but unfortunately is ignored in conventional phase field models. It is found that due to the traps provided by the functional organic fillers, more carriers are trapped near the electrodes and weaken the electric field, thus significantly suppressing the breakdown initialization process. An interpenetrating gradient structure is designed rationally and synthesized experimentally, which exhibits concurrent high energy density (5.51 J cm(−3)) and high charge‐discharge efficiency (90%) up to 200 °C. This work provides a strategy to predict the high‐temperature energy storage performance of polymer composites containing charge‐inhibiting components and helps broaden the scope of data‐driven materials design based on phase‐field modeling. John Wiley and Sons Inc. 2023-07-14 /pmc/articles/PMC10502658/ /pubmed/37452383 http://dx.doi.org/10.1002/advs.202302949 Text en © 2023 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
Li, Manxi
Zhu, Yujie
Wang, Rui
Fu, Jing
Ran, Zhaoyu
Yang, Mingcong
Li, Junluo
Hu, Jun
He, Jinliang
Li, Qi
A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title_full A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title_fullStr A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title_full_unstemmed A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title_short A Bi‐Gradient Dielectric Polymer/High‐Κ Nanoparticle/Molecular Semiconductor Ternary Composite for High‐Temperature Capacitive Energy Storage
title_sort bi‐gradient dielectric polymer/high‐κ nanoparticle/molecular semiconductor ternary composite for high‐temperature capacitive energy storage
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10502658/
https://www.ncbi.nlm.nih.gov/pubmed/37452383
http://dx.doi.org/10.1002/advs.202302949
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