Large Energy Capacitive High-Entropy Lead-Free Ferroelectrics
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Shiqing Deng | Hui Liu | He Qi | Jun Chen | Jie Wu | Liang Chen | Lifeng Zhu | Hui Yu
[1] Zongping Shao,et al. High-Entropy Perovskite Oxide: A New Opportunity for Developing Highly Active and Durable Air Electrode for Reversible Protonic Ceramic Electrochemical Cells , 2022, Nano-Micro Letters.
[2] Shiqing Deng,et al. Local Diverse Polarization Optimized Comprehensive Energy‐Storage Performance in Lead‐Free Superparaelectrics , 2022, Advanced materials.
[3] Shiqing Deng,et al. Excellent energy storage and mechanical performance in hetero-structure BaTiO3-based relaxors via local phase boundary design , 2022, Chemical Engineering Journal.
[4] Yaojin Wang,et al. Outstanding comprehensive energy storage performance in lead-free BiFeO3-based relaxor ferroelectric ceramics by multiple optimization design , 2022, Acta Materialia.
[5] Xingyi Huang,et al. High Conduction Band Inorganic Layers for Distinct Enhancement of Electrical Energy Storage in Polymer Nanocomposites , 2022, Nano-Micro Letters.
[6] Shiqing Deng,et al. Giant energy-storage density with ultrahigh efficiency in lead-free relaxors via high-entropy design , 2022, Nature Communications.
[7] Kecheng Zhang,et al. Bi0·5K0·5TiO3-based lead-free relaxor ferroelectric with high energy storage performances via the grain size and bandgap engineering , 2022, Materials Today Chemistry.
[8] Limei Zheng,et al. High-Energy Storage Properties over a Broad Temperature Range in La-Modified BNT-Based Lead-Free Ceramics. , 2022, ACS applied materials & interfaces.
[9] Kongjun Zhu,et al. Synergic Enhancement of Energy Storage Density and Efficiency in MnO2-Doped AgNbO3@SiO2 Ceramics via A/B-Site Substitutions. , 2022, ACS applied materials & interfaces.
[10] J. Zhai,et al. Composition and Structure Optimized BiFeO3 -SrTiO3 Lead-Free Ceramics with Ultrahigh Energy Storage Performance. , 2022, Small.
[11] Haibo Yang,et al. Energy storage performance of K0.5Na0.5NbO3-based ceramics modified by Bi(Zn2/3(Nb0.85Ta0.15)1/3)O3 , 2021 .
[12] R. Zuo,et al. Local Structure Engineered Lead-Free Ferroic Dielectrics for Superior Energy-Storage Capacitors: A Review , 2021, Energy Storage Materials.
[13] Yunzhi Wang,et al. Role of Point Defects in the Formation of Relaxor Ferroelectrics , 2021, SSRN Electronic Journal.
[14] Shiqing Deng,et al. Outstanding Energy Storage Performance in High‐Hardness (Bi0.5K0.5)TiO3‐Based Lead‐Free Relaxors via Multi‐Scale Synergistic Design , 2021, Advanced Functional Materials.
[15] Qinghua Zhang,et al. Ultrahigh energy storage in superparaelectric relaxor ferroelectrics , 2021, Science.
[16] Ge Wang,et al. Electroceramics for High-Energy Density Capacitors: Current Status and Future Perspectives , 2021, Chemical reviews.
[17] Jiagang Wu,et al. Simultaneous enhancement of polarization and breakdown strength in lead-free BaTiO3-based ceramics , 2021 .
[18] Wangfeng Bai,et al. Significantly tailored energy-storage performances in Bi0.5Na0.5TiO3–SrTiO3-based relaxor ferroelectric ceramics by introducing bismuth layer-structured relaxor BaBi2Nb2O9 for capacitor application , 2021 .
[19] Honghui Wu,et al. Perspective on antiferroelectrics for energy storage and conversion applications , 2020, Chinese Chemical Letters.
[20] Xiuli Chen,et al. High energy storage density and power density achieved simultaneously in NaNbO3-based lead-free ceramics via antiferroelectricity enhancement , 2020 .
[21] Jingfeng Li,et al. Lead-free antiferroelectric niobates AgNbO3 and NaNbO3 for energy storage applications , 2020 .
[22] Guangzu Zhang,et al. Constructing phase boundary in AgNbO3 antiferroelectrics: pathway simultaneously achieving high energy density and efficiency , 2020, Nature Communications.
[23] J. Zhai,et al. Significantly enhanced energy storage density and efficiency of BNT-based perovskite ceramics via A-site defect engineering , 2020, Energy Storage Materials.
[24] Wei Wu,et al. Simultaneously achieving high energy storage density and efficiency under low electric field in BiFeO3-based lead-free relaxor ferroelectric ceramics , 2020 .
[25] Fei Li,et al. Grain-orientation-engineered multilayer ceramic capacitors for energy storage applications , 2020, Nature Materials.
[26] H. Olin,et al. Structure, Performance, and Application of BiFeO3 Nanomaterials , 2020, Nano-Micro Letters.
[27] R. Zuo,et al. Superior Energy‐Storage Capacitors with Simultaneously Giant Energy Density and Efficiency Using Nanodomain Engineered BiFeO3‐BaTiO3‐NaNbO3 Lead‐Free Bulk Ferroelectrics , 2019, Advanced Energy Materials.
[28] Qinghua Zhang,et al. Ultrahigh–energy density lead-free dielectric films via polymorphic nanodomain design , 2019, Science.
[29] R. Zuo,et al. Ultrahigh Energy‐Storage Density in NaNbO3‐Based Lead‐Free Relaxor Antiferroelectric Ceramics with Nanoscale Domains , 2019, Advanced Functional Materials.
[30] Fei Li,et al. Perovskite lead-free dielectrics for energy storage applications , 2019, Progress in Materials Science.
[31] F. Gao,et al. Grain size engineered lead-free ceramics with both large energy storage density and ultrahigh mechanical properties , 2019, Nano Energy.
[32] X. Dong,et al. Superior energy storage properties and excellent stability of novel NaNbO3-based lead-free ceramics with A-site vacancy obtained via a Bi2O3 substitution strategy , 2018 .
[33] H. Hahn,et al. Rare earth and transition metal based entropy stabilised perovskite type oxides , 2017 .
[34] Jingfeng Li,et al. Lead‐Free Antiferroelectric Silver Niobate Tantalate with High Energy Storage Performance , 2017, Advanced materials.
[35] D. Viehland,et al. The influence of Mn substitution on the local structure of Na0.5Bi0.5TiO3 crystals: Increased ferroelectric ordering and coexisting octahedral tilts , 2012 .
[36] D. Viehland,et al. Observation of partially incoherent ⟨110⟩ boundaries between polar nanodomains in Na1/2Bi1/2TiO3 single crystals , 2010 .
[37] T. Grande,et al. The Ferroic Phase Transitions of BiFeO3 , 2008 .
[38] Pam A. Thomas,et al. Investigation of the structure and phase transitions in the novel A-site substituted distorted perovskite compound Na(0.5)Bi(0.5)TiO(3). , 2002, Acta crystallographica. Section B, Structural science.
[39] P. Thomas,et al. Investigation of the structure and phase transitions in the novel a-site substituted perovskite compound Na0.5Bi0.5TiO3 , 2000 .
[40] A. Glazer,et al. Simple ways of determining perovskite structures , 1975 .
[41] Shantao Zhang,et al. Simultaneous achievement of ultrahigh energy storage density and high efficiency in BiFeO3-based relaxor ferroelectric ceramics via a highly disordered multicomponent design , 2022, Journal of Materials Chemistry A.
[42] Shujun Zhang,et al. High entropy design: a new pathway to promote the piezoelectricity and dielectric energy storage in perovskite oxides , 2022 .
[43] Xihong Hao,et al. Enhanced energy storage properties of lead-free NaNbO3-based ceramics via A/B-site substitution , 2021 .
[44] María Blanca Fernández-Viñéa. CURRENT STATUS AND FUTURE PERSPECTIVES , 2018 .
[45] Yang Wei-we. A Review on , 2008 .