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Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives

[Image: see text] Materials exhibiting high energy/power density are currently needed to meet the growing demand of portable electronics, electric vehicles and large-scale energy storage devices. The highest energy densities are achieved for fuel cells, batteries, and supercapacitors, but convention...

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Autores principales: Wang, Ge, Lu, Zhilun, Li, Yong, Li, Linhao, Ji, Hongfen, Feteira, Antonio, Zhou, Di, Wang, Dawei, Zhang, Shujun, Reaney, Ian M
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8277101/
https://www.ncbi.nlm.nih.gov/pubmed/33909415
http://dx.doi.org/10.1021/acs.chemrev.0c01264
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author Wang, Ge
Lu, Zhilun
Li, Yong
Li, Linhao
Ji, Hongfen
Feteira, Antonio
Zhou, Di
Wang, Dawei
Zhang, Shujun
Reaney, Ian M
author_facet Wang, Ge
Lu, Zhilun
Li, Yong
Li, Linhao
Ji, Hongfen
Feteira, Antonio
Zhou, Di
Wang, Dawei
Zhang, Shujun
Reaney, Ian M
author_sort Wang, Ge
collection PubMed
description [Image: see text] Materials exhibiting high energy/power density are currently needed to meet the growing demand of portable electronics, electric vehicles and large-scale energy storage devices. The highest energy densities are achieved for fuel cells, batteries, and supercapacitors, but conventional dielectric capacitors are receiving increased attention for pulsed power applications due to their high power density and their fast charge–discharge speed. The key to high energy density in dielectric capacitors is a large maximum but small remanent (zero in the case of linear dielectrics) polarization and a high electric breakdown strength. Polymer dielectric capacitors offer high power/energy density for applications at room temperature, but above 100 °C they are unreliable and suffer from dielectric breakdown. For high-temperature applications, therefore, dielectric ceramics are the only feasible alternative. Lead-based ceramics such as La-doped lead zirconate titanate exhibit good energy storage properties, but their toxicity raises concern over their use in consumer applications, where capacitors are exclusively lead free. Lead-free compositions with superior power density are thus required. In this paper, we introduce the fundamental principles of energy storage in dielectrics. We discuss key factors to improve energy storage properties such as the control of local structure, phase assemblage, dielectric layer thickness, microstructure, conductivity, and electrical homogeneity through the choice of base systems, dopants, and alloying additions, followed by a comprehensive review of the state-of-the-art. Finally, we comment on the future requirements for new materials in high power/energy density capacitor applications.
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spelling pubmed-82771012021-07-14 Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives Wang, Ge Lu, Zhilun Li, Yong Li, Linhao Ji, Hongfen Feteira, Antonio Zhou, Di Wang, Dawei Zhang, Shujun Reaney, Ian M Chem Rev [Image: see text] Materials exhibiting high energy/power density are currently needed to meet the growing demand of portable electronics, electric vehicles and large-scale energy storage devices. The highest energy densities are achieved for fuel cells, batteries, and supercapacitors, but conventional dielectric capacitors are receiving increased attention for pulsed power applications due to their high power density and their fast charge–discharge speed. The key to high energy density in dielectric capacitors is a large maximum but small remanent (zero in the case of linear dielectrics) polarization and a high electric breakdown strength. Polymer dielectric capacitors offer high power/energy density for applications at room temperature, but above 100 °C they are unreliable and suffer from dielectric breakdown. For high-temperature applications, therefore, dielectric ceramics are the only feasible alternative. Lead-based ceramics such as La-doped lead zirconate titanate exhibit good energy storage properties, but their toxicity raises concern over their use in consumer applications, where capacitors are exclusively lead free. Lead-free compositions with superior power density are thus required. In this paper, we introduce the fundamental principles of energy storage in dielectrics. We discuss key factors to improve energy storage properties such as the control of local structure, phase assemblage, dielectric layer thickness, microstructure, conductivity, and electrical homogeneity through the choice of base systems, dopants, and alloying additions, followed by a comprehensive review of the state-of-the-art. Finally, we comment on the future requirements for new materials in high power/energy density capacitor applications. American Chemical Society 2021-04-28 2021-05-26 /pmc/articles/PMC8277101/ /pubmed/33909415 http://dx.doi.org/10.1021/acs.chemrev.0c01264 Text en © 2021 The Authors. Published by American Chemical Society 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 Wang, Ge
Lu, Zhilun
Li, Yong
Li, Linhao
Ji, Hongfen
Feteira, Antonio
Zhou, Di
Wang, Dawei
Zhang, Shujun
Reaney, Ian M
Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title_full Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title_fullStr Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title_full_unstemmed Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title_short Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives
title_sort electroceramics for high-energy density capacitors: current status and future perspectives
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8277101/
https://www.ncbi.nlm.nih.gov/pubmed/33909415
http://dx.doi.org/10.1021/acs.chemrev.0c01264
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