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      Constructing phase boundary in AgNbO 3 antiferroelectrics: pathway simultaneously achieving high energy density and efficiency

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          Abstract

          Dielectric capacitors with high energy storage density ( W rec) and efficiency ( η) are in great demand for high/pulsed power electronic systems, but the state-of-the-art lead-free dielectric materials are facing the challenge of increasing one parameter at the cost of the other. Herein, we report that high W rec of 6.3 J cm -3 with η of 90% can be simultaneously achieved by constructing a room temperature M2–M3 phase boundary in (1- x)AgNbO 3- xAgTaO 3 solid solution system. The designed material exhibits high energy storage stability over a wide temperature range of 20–150 °C and excellent cycling reliability up to 10 6 cycles. All these merits achieved in the studied solid solution are attributed to the unique relaxor antiferroelectric features relevant to the local structure heterogeneity and antiferroelectric ordering, being confirmed by scanning transmission electron microscopy and synchrotron X-ray diffraction. This work provides a good paradigm for developing new lead-free dielectrics for high-power energy storage applications.

          Abstract

          Dielectric capacitors are widely used in electronic systems but they possess inferior energy density in comparison with other electrochemical energy storage. Here, the authors construct a diffused phase boundary to simultaneously achieve high energy storage density and efficiency in AgNbO 3antiferroelectrics.

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          Most cited references60

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          Relaxor ferroelectrics

          L. Cross (1987)
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            Flexible high-temperature dielectric materials from polymer nanocomposites.

            Dielectric materials, which store energy electrostatically, are ubiquitous in advanced electronics and electric power systems. Compared to their ceramic counterparts, polymer dielectrics have higher breakdown strengths and greater reliability, are scalable, lightweight and can be shaped into intricate configurations, and are therefore an ideal choice for many power electronics, power conditioning, and pulsed power applications. However, polymer dielectrics are limited to relatively low working temperatures, and thus fail to meet the rising demand for electricity under the extreme conditions present in applications such as hybrid and electric vehicles, aerospace power electronics, and underground oil and gas exploration. Here we describe crosslinked polymer nanocomposites that contain boron nitride nanosheets, the dielectric properties of which are stable over a broad temperature and frequency range. The nanocomposites have outstanding high-voltage capacitive energy storage capabilities at record temperatures (a Weibull breakdown strength of 403 megavolts per metre and a discharged energy density of 1.8 joules per cubic centimetre at 250 degrees Celsius). Their electrical conduction is several orders of magnitude lower than that of existing polymers and their high operating temperatures are attributed to greatly improved thermal conductivity, owing to the presence of the boron nitride nanosheets, which improve heat dissipation compared to pristine polymers (which are inherently susceptible to thermal runaway). Moreover, the polymer nanocomposites are lightweight, photopatternable and mechanically flexible, and have been demonstrated to preserve excellent dielectric and capacitive performance after intensive bending cycles. These findings enable broader applications of organic materials in high-temperature electronics and energy storage devices.
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              Perovskite lead-free dielectrics for energy storage applications

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                Author and article information

                Contributors
                luonn1234@163.com
                shujun@uow.edu.au
                yzwei@gxu.edu.cn
                Journal
                Nat Commun
                Nat Commun
                Nature Communications
                Nature Publishing Group UK (London )
                2041-1723
                24 September 2020
                24 September 2020
                2020
                : 11
                : 4824
                Affiliations
                [1 ]GRID grid.256609.e, ISNI 0000 0001 2254 5798, Guangxi Key Laboratory of Processing for Non-ferrous Metallic and Featured Materials, School of Resources, Environment and Materials, , Guangxi University, ; 530004 Nanning, China
                [2 ]GRID grid.256609.e, ISNI 0000 0001 2254 5798, Center on Nanoenergy Research, School of Physical Science and Technology, , Guangxi University, ; 530004 Nanning, China
                [3 ]GRID grid.1013.3, ISNI 0000 0004 1936 834X, School of Aerospace, Mechanical & Mechatronic Engineering, , The University of Sydney, ; Sydney, NSW 2006 Australia
                [4 ]GRID grid.1007.6, ISNI 0000 0004 0486 528X, Institute for Superconducting and Electronic Materials, Australian Institute of Innovative Materials, , University of Wollongong, ; Wollongong, NSW 2500 Australia
                [5 ]GRID grid.194645.b, ISNI 0000000121742757, Department of Civil Engineering, , The University of Hong Kong, ; Pokfulam Road, Hong Kong, SAR China
                [6 ]GRID grid.33199.31, ISNI 0000 0004 0368 7223, School of Optical and Electronic Information, , Huazhong University of Science and Technology, ; 430074 Wuhan, China
                [7 ]GRID grid.12527.33, ISNI 0000 0001 0662 3178, State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, , Tsinghua University, ; Beijing, China
                Author information
                http://orcid.org/0000-0001-7033-7176
                http://orcid.org/0000-0001-8565-1758
                http://orcid.org/0000-0001-6139-6887
                http://orcid.org/0000-0002-0185-0512
                http://orcid.org/0000-0003-3821-9078
                Article
                18665
                10.1038/s41467-020-18665-5
                7515927
                32973146
                b6a6b563-66f2-4ab2-8f78-1ca32a21f3c6
                © The Author(s) 2020

                Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/.

                History
                : 2 March 2020
                : 2 September 2020
                Funding
                Funded by: FundRef https://doi.org/10.13039/501100001809, National Natural Science Foundation of China (National Science Foundation of China);
                Award ID: 11864004
                Award Recipient :
                Funded by: FundRef https://doi.org/10.13039/501100004607, Natural Science Foundation of Guangxi Province (Guangxi Natural Science Foundation);
                Award ID: 2017GXNSFBA198132
                Award Recipient :
                Funded by: Science and Technology Major Project of Guangxi province - AA17204100
                Funded by: FundRef https://doi.org/10.13039/501100008811, Centre of Excellence for Electromaterials Science, Australian Research Council (ARC Centre of Excellence for Electromaterials Science);
                Award ID: DP190101155
                Award ID: DP190101155
                Award ID: FT140100698
                Award Recipient :
                Funded by: Basic Science Center Program of the National Natural Science Foundation of China - 51788104
                Categories
                Article
                Custom metadata
                © The Author(s) 2020

                Uncategorized
                electronic properties and materials,ferroelectrics and multiferroics
                Uncategorized
                electronic properties and materials, ferroelectrics and multiferroics

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