Pulse energy-storage performance and temperature stability of Bi2O3-added BaTiO3 based ceramics
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Jun Sun | Jianning Ding | Tingyu Deng | B. Fang | J. Hao | Shuai Zhang | Xiaolong Lu | Gui Yan | Xiang-juan Zhao | Juanwen Yan
[1] Yang Li,et al. Domain dynamics engineering in ergodic relaxor ferroelectrics for dielectric energy storage , 2023, Acta Materialia.
[2] Shenglin Jiang,et al. Ultrahigh energy density and excellent discharge properties in Ce4+ and Ta5+ co-modified AgNbO3 relaxor antiferroelectric ceramics via multiple design strategies , 2023, Acta Materialia.
[3] J. Zhai,et al. Realizing ultrahigh breakdown strength and ultrafast discharge speed in novel barium titanate-based ceramics through multicomponent compounding strategy , 2022, Journal of the European Ceramic Society.
[4] Wuwei Feng,et al. Obtaining high energy storage performance and thermal stability simultaneously in BiFeO3–BaTiO3–Bi2LaTiNbO9 lead-free relaxor ferroelectric ceramics , 2022, Ceramics International.
[5] Chang Liu,et al. Phase field modeling of coupling evolution of fracture and dielectric breakdown in ferroelectric materials , 2022, International Journal of Mechanical Sciences.
[6] B. Fang,et al. Correlation between phase structure and polarization of Mg doped (Ba0.98Li0.02)TiO3 energy storage ceramics , 2022, Journal of Materials Science: Materials in Electronics.
[7] Wuwei Feng,et al. Achieving High Energy Storage Density and Efficiency Simultaneously in Sr(Nb0.5al0.5)O3 Modified Bifeo3 Based Lead-Free Ceramics , 2022, SSRN Electronic Journal.
[8] J. Zhai,et al. Boosting Energy Storage Performance of Lead-Free Ceramics via Layered Structure Optimization Strategy. , 2022, Small.
[9] Xiangyong Zhao,et al. Achieving high pulse charge-discharge energy storage properties and temperature stability of (Ba0.98-Li0.02La )(Mg0.04Ti0.96)O3 lead-free ceramics via bandgap and defect engineering , 2022, Chemical Engineering Journal.
[10] Xingui Tang,et al. Energy storage and charge-discharge performance of B-site doped NBT-based lead-free ceramics , 2022, Journal of Alloys and Compounds.
[11] Maolin Zhang,et al. High energy storage and thermal stability under low electric field in Bi0.5Na0.5TiO3-modified BaTiO3-Bi(Zn0.25Ta0.5)O3 ceramics , 2022, Chemical Engineering Journal.
[12] Xiuli Chen,et al. Realizing enhanced energy storage and hardness performances in 0.90NaNbO3−0.10Bi(Zn0.5Sn0.5)O3 ceramics , 2022, Journal of Advanced Ceramics.
[13] Wangfeng Bai,et al. Excellent energy storage performance of paraelectric Ba0.4Sr0.6TiO3 based ceramics through induction of polar nano-regions , 2022, Ceramics International.
[14] J. Ouyang,et al. A Combined Optimization Strategy for Improvement of Comprehensive Energy Storage Performance in Sodium Niobate-Based Antiferroelectric Ceramics. , 2022, ACS applied materials & interfaces.
[15] Wangfeng Bai,et al. Promoting Energy Storage Performance of Sr0.7Ba0.3Nb2O6 Tetragonal Tungsten Bronze Ceramic by a Two-Step Sintering Technique , 2021, ACS Applied Electronic Materials.
[16] T. Fujita,et al. Ultrahigh Energy Storage Density and Efficiency in Bi0.5Na0.5TiO3-Based Ceramics via the Domain and Bandgap Engineering. , 2021, ACS applied materials & interfaces.
[17] Laijun Liu,et al. The oxygen vacancy migration and its lattice structural origin in A-site non-stoichiometric bismuth sodium titanate perovskites , 2021, Journal of Materiomics.
[18] Zhiwu Chen,et al. Effects of sintering temperature and Bi2O3, Y2O3 and MgO co-doping on the dielectric properties of X8R BaTiO3-based ceramics , 2021, Ceramics International.
[19] R. Zuo,et al. X9R-type Ag1-3Bi NbO3 based lead-free dielectric ceramic capacitors with excellent energy-storage properties , 2021, Ceramics International.
[20] Guohua Chen,et al. A new strategy to realize high energy storage properties and ultrafast discharge speed in Sr0.7Bi0.2TiO3-based relaxor ferroelectric ceramic , 2021 .
[21] X. Lou,et al. Domain Engineered Lead-Free Ceramics with Large Energy Storage Density and Ultra-High Efficiency under Low Electric Fields. , 2021, ACS applied materials & interfaces.
[22] Guohua Chen,et al. The effect of Hf doping on the dielectric and energy storage performance of barium titanate based glass ceramics , 2021 .
[23] Hui Lin,et al. Enhanced Energy Storage Properties Achieved in Na0.5Bi0.5TiO3–Based Ceramics via Composition Design and Domain Engineering , 2021 .
[24] P. Lu,et al. Regulating energy storage performances of 0.85NaNbO3-0.15Bi(Zn2/3Nb1/3)O3 ceramics using BaTiO3 , 2021 .
[25] Xingui Tang,et al. Enhanced energy storage density and efficiency in lead-free Bi(Mg1/2Hf1/2)O3-modified BaTiO3 ceramics , 2021 .
[26] Qi Zhang,et al. A review on the development of lead-free ferroelectric energy-storage ceramics and multilayer capacitors , 2020 .
[27] J. Zhai,et al. Superior energy storage properties and excellent stability achieved in environment-friendly ferroelectrics via composition design strategy , 2020 .
[28] Jianning Ding,et al. Pyroelectric performance, dielectric response and conductive mechanism of BCHT lead-free piezoelectric ceramics via powder injection molding , 2020 .
[29] J. Zhai,et al. Investigations on the properties of Li3xLa2/3-xTiO3 based all-solid-state supercapacitor: Relationships between the capacitance, ionic conductivity, and temperature , 2020 .
[30] Longtu Li,et al. High temperature lead-free BNT-based ceramics with stable energy storage and dielectric properties , 2020 .
[31] X. Chao,et al. Enhanced energy density and thermal stability in relaxor ferroelectric Bi0.5Na0.5TiO3-Sr0.7Bi0.2TiO3 ceramics , 2019 .
[32] Yan Yan,et al. Effect of bismuth excess on the energy storage performance of 0.5Na0.5Bi0.5TiO3–0.5SrTiO3 ceramics , 2019, Materials Research Express.
[33] S. Qu,et al. A new family of sodium niobate-based dielectrics for electrical energy storage applications , 2019, Journal of the European Ceramic Society.
[34] Gang Liu,et al. Microstructure evolution, mechanism of electric breakdown strength, and dielectric energy storage performance of CuO modified Ba0.65Sr0.245Bi0.07TiO3 Pb-free bulk ceramics , 2019 .
[35] Longtu Li,et al. Multifunctional BaTiO3‐(Bi0.5Na0.5)TiO3‐based MLCC with high‐energy storage properties and temperature stability , 2019, Journal of the American Ceramic Society.
[36] Longtu Li,et al. High-temperature lead-free multilayer ceramic capacitors with ultrahigh energy density and efficiency fabricated via two-step sintering , 2019, Journal of Materials Chemistry A.
[37] N. Sareecha. Marked influence of low Bi doping levels on the structural and thermal transport properties of nonstoichiometric 0.98 PbTiO3 ceramics , 2019, Materials Chemistry and Physics.
[38] Fei Li,et al. Perovskite lead-free dielectrics for energy storage applications , 2019, Progress in Materials Science.
[39] Shujun Zhang,et al. Lead-free textured piezoceramics using tape casting: A review , 2018, Journal of Materiomics.
[40] Longtu Li,et al. Effect of MnO 2 on the dielectric properties of Nb‐doped BaTiO 3 ‐(Bi 0.5 Na 0.5 )TiO 3 ceramics for X9R MLCC applications , 2018, Journal of the American Ceramic Society.
[41] 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 .
[42] H. Du,et al. Ultrahigh energy density and improved discharged efficiency in bismuth sodium titanate based relaxor ferroelectrics with A-site vacancy , 2018, Journal of Materiomics.
[43] Xiangyong Zhao,et al. Facile preparation and performance of novel high-T C xBi(Ni 1/2 Ti 1/2 )O 3 -(1-x)Pb(Zr 1/2 Ti 1/2 )O 3 piezoceramics , 2018 .
[44] Fei Yan,et al. Enhanced energy storage properties of Ba 0.4 Sr 0.6 TiO 3 lead-free ceramics with Bi 2 O 3 -B 2 O 3 -SiO 2 glass addition , 2017 .
[45] Hongliang Du,et al. Large recoverable energy storage density and low sintering temperature in potassium‐sodium niobate‐based ceramics for multilayer pulsed power capacitors , 2017 .
[46] I. Reaney,et al. BaTiO3–Bi(Mg2/3Nb1/3)O3 Ceramics for High-Temperature Capacitor Applications , 2016 .
[47] X. Tan,et al. Disrupting long-range polar order with an electric field , 2016 .
[48] Hongliang Du,et al. Enhanced dielectric breakdown strength and energy storage density in lead-free relaxor ferroelectric ceramics prepared using transition liquid phase sintering , 2016 .
[49] David Lee,et al. The challenge, potential and applications for energy storage innovation , 2016 .
[50] S. Trolier-McKinstry,et al. High‐Energy Density Dielectrics and Capacitors for Elevated Temperatures: Ca(Zr,Ti)O3 , 2013 .
[51] A. Watcharapasorn,et al. Effect of Lanthanum Additive on Electrical and Thermal Properties of Bismuth Sodium Titanate Ceramics , 2013 .
[52] K. Rajab,et al. Crystal Structure and Microwave Dielectric Properties of Alkaline‐Earth Hafnates, AHfO3 (A=Ba, Sr, Ca) , 2008 .
[53] Masayuki Toda,et al. A novel high-k ‘Y5V’ barium titanate ceramics co-doped with lanthanum and cerium , 2007 .
[54] Y. Song,et al. Effects of Rare-Earth Oxides on Temperature Stability of Acceptor-Doped BaTiO3 , 2005 .
[55] Soo-chang Yu,et al. Raman study for (Ba1−xCax)TiO3 and Ba(Ti1−yCay)O3 crystalline ceramics , 2000 .
[56] G. Damamme,et al. Space charge characterization for the 21th century , 1997 .
[57] R. Waser. TrI4: The role of grain boundaries in conduction and breakdown of perovskite-type titanates , 1992 .
[58] Jianning Ding,et al. Achieving outstanding temperature and frequency stability in NaNbO3 modified (Ba0.94Li0.02La0.04)(Mg0.04Ti0.96)O3 pulse energy storage ceramics , 2023, Journal of Materials Chemistry A.
[59] H. Zeng,et al. Achieving high energy storage performance and ultrafast discharge speed in SrTiO3-based ceramics via a synergistic effect of chemical modification and defect chemistry , 2022, Chemical Engineering Journal.
[60] T. Fujita,et al. Effect of Ca2+/Hf4+ modification at A/B sites on energy-storage density of Bi0.47Na0.47Ba0.06TiO3 ceramics , 2021 .
[61] Hiroshi Kishi,et al. Base-Metal Electrode-Multilayer Ceramic Capacitors: Past, Present and Future Perspectives , 2003 .
[62] J. R. Laghari,et al. Energy-storage pulsed-power capacitor technology , 1992 .