Large enhancement of energy storage density in (Pb0.92La0.08)(Zr0.65Ti0.35)O3/PbZrO3 multilayer thin film
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Buwei Sun | M. Guo | Ming Wu | Z. Ma | Weiwei Gao | Haonan Sun | X. Lou | Zhuang Ma
[1] A. Danchin,et al. Was photosynthetic RuBisCO recruited by acquisitive evolution from RuBisCO-like proteins involved in sulfur metabolism? , 2005, Research in microbiology.
[2] A. A. Bokov,et al. Recent progress in relaxor ferroelectrics with perovskite structure , 2020, Progress in Advanced Dielectrics.
[3] X. Lou,et al. Phase separation in lead zirconate titanate and bismuth titanate during electrical shorting and fatigue , 2006 .
[4] M. Alexe,et al. Microstructure and electrical properties of (120)O-oriented and of (001)O-oriented epitaxial antiferroelectric PbZrO3 thin films on (100) SrTiO3 substrates covered with different oxide bottom electrodes , 2007 .
[5] M. Stanley Whittingham,et al. Materials Challenges Facing Electrical Energy Storage , 2008 .
[6] Jayanta Parui,et al. Enhancement of charge and energy storage in sol-gel derived pure and La-modified PbZrO3 thin films , 2008 .
[7] Jiangyu Li,et al. Space charges and size effects in semiconducting ferroelectric BaTiO3/SrTiO3 superlattices , 2010 .
[8] L. Martin,et al. Advances in the growth and characterization of magnetic, ferroelectric, and multiferroic oxide thin films , 2010 .
[9] John Wang,et al. Microstructure and texture development in single layered and heterolayered PZT thin films , 2010 .
[10] Zhaohua Jiang,et al. Effect of Eu Doping on the Electrical Properties and Energy Storage Performance of PbZrO3 Antiferroelectric Thin Films , 2011 .
[11] Xihong Hao,et al. High energy-storage performance in Pb0.91La0.09(Ti0.65Zr0.35)O3 relaxor ferroelectric thin films , 2012 .
[12] D. Chrisey,et al. Relaxor-ferroelectric superlattices: high energy density capacitors , 2012, Journal of physics. Condensed matter : an Institute of Physics journal.
[13] Xihong Hao,et al. Large enhancement of energy-storage properties of compositional graded (Pb 1-x La x )(Zr 0.65 Ti 0.35 )O 3 relaxor ferroelectric thick films , 2013 .
[14] Xihong Hao,et al. Significant enhancement of energy-storage performance of (Pb0.91La0.09)(Zr0.65Ti0.35)O3 relaxor ferroelectric thin films by Mn doping , 2013 .
[15] Xihong Hao,et al. A review on the dielectric materials for high energy-storage application , 2013 .
[16] F. Wang,et al. High energy density capacitors based on 0.88BaTiO3–0.12Bi(Mg0.5, Ti0.5)O3/PbZrO3 multilayered thin films , 2014 .
[17] Yang Shen,et al. Polymer-Based Dielectrics with High Energy Storage Density , 2015 .
[18] Qi Zhang,et al. Large Energy Storage Density and High Thermal Stability in a Highly Textured (111)-Oriented Pb0.8Ba0.2ZrO3 Relaxor Thin Film with the Coexistence of Antiferroelectric and Ferroelectric Phases. , 2015, ACS applied materials & interfaces.
[19] B. Peng,et al. Large enhancement of the recoverable energy storage density and piezoelectric response in relaxor-ferroelectric capacitors by utilizing the seeding layers engineering , 2015 .
[20] T. Jackson,et al. Flexible high-temperature dielectric materials from polymer nanocomposites , 2015, Nature.
[21] Qinghua Zhang,et al. Giant Energy Density and Improved Discharge Efficiency of Solution‐Processed Polymer Nanocomposites for Dielectric Energy Storage , 2016, Advanced materials.
[22] J. Ouyang,et al. Energy Storage Characteristics of BiFeO3/BaTiO3 Bi-Layers Integrated on Si , 2016, Materials.
[23] Wen-Bo Li,et al. Enhanced energy storage density by inducing defect dipoles in lead free relaxor ferroelectric BaTiO3-based ceramics , 2017 .
[24] J. Zhai,et al. Temperature induced high charge–discharge performances in lead-free Bi0.5Na0.5TiO3-based ergodic relaxor ferroelectric ceramics , 2017 .
[25] Wei Li,et al. Fatigue mechanism verified using photovoltaic properties of Pb(Zr0.52Ti0.48)O3 thin films , 2017 .
[26] J. Ouyang,et al. Increasing energy storage capabilities of space-charge dominated ferroelectric thin films using interlayer coupling ☆ , 2017 .
[27] X. Ren,et al. High temperature-stability of (Pb0.9La0.1)(Zr0.65Ti0.35)O3 ceramic for energy-storage applications at finite electric field strength , 2017 .
[28] X. Lou,et al. Ultrahigh Energy Storage Performance of Lead‐Free Oxide Multilayer Film Capacitors via Interface Engineering , 2017, Advanced materials.
[29] Tiandong Zhang,et al. High‐energy storage density and excellent temperature stability in antiferroelectric/ferroelectric bilayer thin films , 2017 .
[30] M. Guo,et al. Defect-controlled electrocaloric effect in PbZrO3 thin films , 2018 .
[31] M. Nguyen,et al. Controlling microstructure and film growth of relaxor-ferroelectric thin films for high break-down strength and energy-storage performance , 2018 .
[32] Geon‐Tae Hwang,et al. High‐Performance Dielectric Ceramic Films for Energy Storage Capacitors: Progress and Outlook , 2018, Advanced Functional Materials.
[33] Geon‐Tae Hwang,et al. Energy storage characteristics of {001} oriented Pb(Zr0.52Ti0.48)O3 thin film grown by chemical solution deposition , 2018, Thin Solid Films.
[34] X. Lou,et al. Significantly enhanced energy storage density with superior thermal stability by optimizing Ba(Zr0.15Ti0.85)O3/Ba(Zr0.35Ti0.65)O3 multilayer structure , 2018, Nano Energy.
[35] Qingshan Lu,et al. High Energy Storage Efficiency with Fatigue Resistance and Thermal Stability in Lead‐Free Na0.5K0.5NbO3/BiMnO3 Solid‐Solution Films , 2018 .
[36] Buwei Sun,et al. Giant negative electrocaloric effect in antiferroelectric PbZrO3 thin films in an ultra-low temperature range , 2019, Journal of Materials Chemistry C.