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Updated: Jan 24, 2026

Multi-material Ceramic-Based Components – Additive Manufacturing of Black-and-white Zirconia Components by Thermoplastic 3D-Printing (CerAM - T3DP)
Published on: January 7, 2019
Ingeniería Superparaeléctrica Polimórfica para Impulsar la Capacidad de Almacenamiento de Energía en Cerámicas a Base
Pan Liu1, Xiang Ren1, Jin Qian2
1Laboratory of Sensitive Materials and Devices Shandong Department of Education, School of Materials Science and Engineering, Liaocheng University, Liaocheng, China.
Abstract:
Electrostatic energy storage using dielectrics plays a vital role in advanced electronics and high-power electrical systems. While superparaelectric materials offer great potential for achieving high recoverable energy density (Wrec) and efficiency (η), their practical applications have been hindered by intrinsically low polarization. Herein, a polymorphic superparaelectric engineering approach that simultaneously enhances polarization and breakdown strength was introduced. By constructing coexisting cubic-orthorhombic-tetragonal (C-O-T) superparaelectric states in BaTiO3-based ceramics, the energy barrier for polarization switching is effectively reduced, leading to improved macroscopic polarization and reinforced breakdown endurance. As a result, the optimized polymorphic superparaelectric ceramics achieve a high Wrec of 9.8 J cm-3 and η of 88.5% under 820 kV cm-1, along with exceptional stability-frequency stability with Wrec variation within ±0.6% and η variation within ±3.3% from 1 to 400 Hz, and fatigue stability with both Wrec and η varying below ±0.3% over 105 cycles. These results underscore the material's promise for high-energy pulsed power applications and establish a new design strategy for next-generation dielectric capacitors.
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