Works matching DE "ANTIFERROELECTRIC materials"
Results: 78
Fluorite‐Structured Ferroelectric and Antiferroelectric Materials: A Gateway of Miniaturized Electronic Devices.
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- 2022
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- Correction Notice
Fluorite‐Structured Ferroelectric and Antiferroelectric Materials: A Gateway of Miniaturized Electronic Devices.
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- Advanced Functional Materials, 2022, v. 32, n. 27, p. 1, doi. 10.1002/adfm.202201737
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Elemental Ferroelectricity and Antiferroelectricity in Group‐V Monolayer.
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- Advanced Functional Materials, 2018, v. 28, n. 17, p. 1, doi. 10.1002/adfm.201707383
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A Janovec‐Kay‐Dunn‐Like Behavior at Thickness Scaling in Ultra‐Thin Antiferroelectric ZrO<sub>2</sub> Films.
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- Advanced Electronic Materials, 2021, v. 7, n. 11, p. 1, doi. 10.1002/aelm.202100485
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Ultralow Electrical Hysteresis along with High Energy‐Storage Density in Lead‐Based Antiferroelectric Ceramics.
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- Advanced Electronic Materials, 2020, v. 6, n. 4, p. 1, doi. 10.1002/aelm.201901366
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High-Energy Storage Density and Efficiency of (1− x)[0.94 NBT-0.06 BT]- xST Lead-Free Ceramics.
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- Energy Technology, 2015, v. 3, n. 12, p. 1198, doi. 10.1002/ente.201500173
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- Article
Giant negative electrocaloric effect in B-site non-stoichiometric (Pb<sub>0.97</sub>La<sub>0.02</sub>)(Zr<sub>0.95</sub>Ti<sub>0.05</sub>)<sub>1+y</sub>O<sub>3</sub> anti-ferroelectric ceramics.
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- Materials Research Letters, 2018, v. 6, n. 7, p. 384, doi. 10.1080/21663831.2018.1466737
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Double hysteresis loops at room temperature in NaNbO3-based lead-free antiferroelectric ceramics.
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- Materials Research Letters, 2018, v. 6, n. 3, p. 159, doi. 10.1080/21663831.2017.1419994
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Tailoring high-energy storage NaNbO<sub>3</sub>-based materials from antiferroelectric to relaxor states.
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- Nature Communications, 2023, v. 14, n. 1, p. 1, doi. 10.1038/s41467-023-37060-4
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Compact artificial neuron based on anti-ferroelectric transistor.
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- Nature Communications, 2022, v. 13, n. 1, p. 1, doi. 10.1038/s41467-022-34774-9
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Record high-T<sub>c</sub> and large practical utilization level of electric polarization in metal-free molecular antiferroelectric solid solutions.
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- Nature Communications, 2022, v. 13, n. 1, p. 1, doi. 10.1038/s41467-022-33039-9
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Achieving high energy storage density of PLZS antiferroelectric within a wide range of components.
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- Journal of Materials Science, 2021, v. 56, n. 10, p. 6073, doi. 10.1007/s10853-020-05720-1
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Van der Waals force-induced intralayer ferroelectric-to-antiferroelectric transition via interlayer sliding in bilayer group-IV monochalcogenides.
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- NPJ Computational Materials, 2022, v. 8, n. 1, p. 1, doi. 10.1038/s41524-022-00724-8
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Dielectric spectroscopy and electrical conductivity measurements on high-tilted antiferroelectric materials.
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- Phase Transitions, 2020, v. 93, n. 9, p. 909, doi. 10.1080/01411594.2020.1813288
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Mesomorphic, electro-optic and structural properties of binary liquid crystalline mixtures with ferroelectric and antiferroelectric liquid crystalline behaviour.
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- Phase Transitions, 2018, v. 91, n. 9/10, p. 1017, doi. 10.1080/01411594.2018.1506883
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Dielectric properties of liquid crystal formed by laterally fluorine-substituted banana-shaped molecules.
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- Phase Transitions, 2018, v. 91, n. 9/10, p. 1007, doi. 10.1080/01411594.2018.1502440
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Theoretical modelling of infrared spectra of the twinned lead zirconate.
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- Phase Transitions, 2017, v. 90, n. 1, p. 17, doi. 10.1080/01411594.2016.1202409
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Antiferroelectric phase transitions in single crystals PbZrO 3 :Sn revisited.
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- Phase Transitions, 2014, v. 87, n. 7, p. 685, doi. 10.1080/01411594.2014.900554
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Antiferroelectric negative capacitance from a structural phase transition in zirconia.
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- Nature Communications, 2022, v. 13, n. 1, p. 1, doi. 10.1038/s41467-022-28860-1
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Ferroelectric/Antiferroelectric BiFeO/YMnO Bilayer: a Monte Carlo Study.
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- Journal of Superconductivity & Novel Magnetism, 2016, v. 29, n. 3, p. 733, doi. 10.1007/s10948-015-3281-5
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Dipole glass parameter behaviour for ferro-antiferroelectric solid mixtures.
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- Condensed Matter Physics, 2013, v. 16, n. 1, p. 1, doi. 10.5488/CMP.16.13703
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Thermal analysis of phase transitions in PbZrSnO antiferroelectric single crystals.
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- Journal of Thermal Analysis & Calorimetry, 2017, v. 128, n. 2, p. 713, doi. 10.1007/s10973-016-6001-x
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Regulation of structure and properties at the ferroelectric–antiferroelectric phase boundary in Ti<sup>4+</sup>-doped PbZrO<sub>3</sub> ceramics.
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- Journal of Materials Science, 2025, v. 60, n. 1, p. 316, doi. 10.1007/s10853-024-10510-0
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Preferential Creation of Polar Translational Boundaries by Interface Engineering in Antiferroelectric PbZrO<sub>3</sub> Thin Films.
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- Advanced Materials Interfaces, 2015, v. 2, n. 18, p. n/a, doi. 10.1002/admi.201500349
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A REVIEW OF FERROELECTRIC PACKED BED NON THERMAL PLASMA REACTOR FOR VOLATILE ORGANIC COMPOUNDS DECOMPOSITION.
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- Environmental Engineering & Management Journal (EEMJ), 2016, v. 15, n. 2, p. 269, doi. 10.30638/eemj.2016.027
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Switching Dynamics in Anti‐Ferroelectric Transistor for Multimodal Reservoir Computing.
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- Advanced Functional Materials, 2024, v. 34, n. 34, p. 1, doi. 10.1002/adfm.202400879
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Design of polar boundaries enhancing negative electrocaloric performance by antiferroelectric phase-field simulations.
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- NPJ Computational Materials, 2024, v. 10, n. 1, p. 1, doi. 10.1038/s41524-024-01334-2
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Separate Kinetics of the Polar and Antiferrodistortive Order Parameters in the Antiferroelectric Transition of PbZr<sub>1-x</sub>Ti<sub>x</sub>O<sub>3</sub> and the Influence of Defects.
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- Archives of Metallurgy & Materials, 2015, v. 60, n. 1, p. 381, doi. 10.1515/amm-2015-0063
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Nonvolatile Random Access Memory and Energy Storage Based on Antiferroelectric Like Hysteresis in ZrO<sub>2</sub>.
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- Advanced Functional Materials, 2016, v. 26, n. 41, p. 7486, doi. 10.1002/adfm.201603182
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A Giant Electrocaloric Effect in Nanoscale Antiferroelectric and Ferroelectric Phases Coexisting in a Relaxor Pb<sub>0.8</sub>Ba<sub>0.2</sub>ZrO<sub>3</sub> Thin Film at Room Temperature.
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- Advanced Functional Materials, 2013, v. 23, n. 23, p. 2987, doi. 10.1002/adfm.201202525
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Temperature-dependent energy storage characterization of Pb-free relaxor ferroelectrics.
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- Journal of Advanced Dielectrics, 2020, v. 10, n. 3, p. N.PAG, doi. 10.1142/S2010135X20500095
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Switching Dynamics and Energy Storage Properties of Fluorite‐Structured Materials.
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- Physica Status Solidi. A: Applications & Materials Science, 2023, v. 220, n. 1, p. 1, doi. 10.1002/pssa.202200403
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Microstructure, electrical properties, and electric field-induced phase transitions in NaNbO<sub>3</sub>-LiTaO<sub>3</sub> lead-free ceramics.
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- Physica Status Solidi. A: Applications & Materials Science, 2014, v. 211, n. 4, p. 869, doi. 10.1002/pssa.201330252
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Broadband dielectric spectroscopic investigation of Melaminium bis (trichloroacetate) dihydrate—a nonlinear optical single crystal.
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- Journal of Materials Science: Materials in Electronics, 2021, v. 32, n. 8, p. 10778, doi. 10.1007/s10854-021-05736-6
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Investigating the Cusp Between Dendritic and Supermolecular Architectures in Self‐Organizing Liquid Crystals.
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- Helvetica Chimica Acta, 2023, v. 106, n. 7, p. 1, doi. 10.1002/hlca.202300041
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High electric field-induced relaxor to ferroelectric phase transition in (Bi<sub>0.5</sub>Na<sub>0.3</sub>K<sub>0.2</sub>)TiO<sub>3</sub>–SrTiO<sub>3</sub>–(Ba<sub>0.8</sub>Ca<sub>0.2</sub>)TiO<sub>3</sub> Pb-free piezoelectric ceramic.
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- Applied Physics A: Materials Science & Processing, 2022, v. 128, n. 4, p. 1, doi. 10.1007/s00339-022-05420-4
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Electric field induced phase transition in a ferroelectric smectic-C* liquid crystal.
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- European Physical Journal - Applied Physics, 2011, v. 55, n. 1, p. N.PAG, doi. 10.1051/epjap/2011110084
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Microwave Electrodynamic Study on Antiferroelectric Materials in a Wide Temperature Range.
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- Materials (1996-1944), 2022, v. 15, n. 24, p. 8834, doi. 10.3390/ma15248834
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Special Issue: Emerging Dielectric, Piezoelectric, and Ferroelectric Ceramic and Crystalline Materials and Their Applications.
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- Materials (1996-1944), 2022, v. 15, n. 15, p. 5118, doi. 10.3390/ma15155118
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Unveiling the ferrielectric nature of PbZrO3-based antiferroelectric materials.
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- Nature Communications, 2020, v. 11, n. 1, p. 1, doi. 10.1038/s41467-020-17664-w
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Local probing of the non-uniform distribution of ferrielectric and antiferroelectric phases.
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- Nano Research, 2023, v. 16, n. 2, p. 3021, doi. 10.1007/s12274-022-4908-z
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Synthesis and Properties of Supramolecular Crops Based on PNZST Antiferroelectric Film.
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- Advances in Materials Science & Engineering, 2022, p. 1, doi. 10.1155/2022/1932294
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Preparation and Study of the Electro-optical Properties of Binary Mixtures of Orthoconic Anti-ferroelectric Esters and Achiral Phenyl Pyrimidine Liquid Crystal.
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- Soft Materials, 2015, v. 13, n. 4, p. 201, doi. 10.1080/1539445X.2015.1063510
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Effects of Electric Field and Temperature on Spontaneous Polarization in the Vicinity of Isotropic to Antiferroelectric B 2 Phase Transition in a Banana-Shaped Mesogen 12OSOR.
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- Soft Materials, 2015, v. 13, n. 1, p. 12, doi. 10.1080/1539445X.2014.958353
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MORFOLOGÍA DEL GRANO EN PIEZOCERAMICAS KNNLiLaTa<sub>0,1</sub> OBTENIDAS MEDIANTE EL PRECURSOR NaNbO<sub>3</sub>.
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- Revista Cubana de Física, 2021, v. 38, n. 2, p. 103
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EFFECTS OF THE LANTHANUM CONCENTRATION ON THE (Pb<sub>1-x</sub>La<sub>x</sub>)(Zr<sub>0:95</sub>Ti<sub>0:05</sub>)<sub>1-x/4</sub>O<sub>3</sub> ANTIFERROELECTRIC CERAMIC SYSTEM.
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- Revista Cubana de Física, 2016, v. 33, n. 1, p. 12
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ENERGY STORAGE POWER OF ANTIFERROELECTRIC AND RELAXOR FERROELECTRIC CERAMICS.
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- Revista Cubana de Física, 2014, v. 31, n. 2, p. 98
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Effects of Mn doping on the dielectric properties of (Pb,La,Sr)(Zr,Sn,Ti,Nb)O<sub>3</sub> antiferroelectric ceramics.
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- Journal of Materials Science: Materials in Electronics, 2018, v. 29, n. 18, p. 15926, doi. 10.1007/s10854-018-9678-8
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The coexisting negative and positive electrocaloric effect in (Pb<sub>0.97</sub>La<sub>0.02</sub>)(Zr, Sn, Ti)O<sub>3</sub> antiferroelectric thick films optimized via phase transition procedure.
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- Journal of Materials Science: Materials in Electronics, 2018, v. 29, n. 17, p. 14528, doi. 10.1007/s10854-018-9587-x
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Temperature-dependent dielectric response of antiferroelectric (Pb<sub>0.97</sub>La<sub>0.02</sub>)(Zr<sub>0.50</sub>Sn<sub>0.40</sub>Ti<sub>0.10</sub>)O<sub>3</sub> ceramic.
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- Journal of Materials Science: Materials in Electronics, 2018, v. 29, n. 7, p. 5634, doi. 10.1007/s10854-018-8532-3
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