JOURNAL ARTICLE

Enhancing electrical energy storage density in anti-ferroelectric ceramics using ferroelastic domain switching

Satyanarayan PatelAditya ChauhanRahul Vaish

Year: 2014 Journal:   Materials Research Express Vol: 1 (4)Pages: 045502-045502   Publisher: IOP Publishing

Abstract

Capacitors form an indispensable part of many modern electrical and electronic devices. An ideal capacitor is expected to possess high power and energy density along with enhanced energy recovery characteristics. Anti-ferroelectric materials form a suitable candidate for ceramic-based capacitor applications, owing to their low loss and high energy density. However, these materials show ample room for improvement through physical means. In this regard, the present work deals with mechanical tuning of the energy storage density and recoverable efficiency in known anti-ferroelectric materials. For this study, various configurations of (Pb1−xLax)(Zr0.90Ti0.10)1−x/4O3 (PLZTx) ceramics have been investigated. Both mechanical confinement and temperature applications have been shown to improve the performance characteristics of all selected compositions. This behavior has been explained on the basis of competing ferroelectric and ferroelastic domain rotations. The application of suitable stress/temperature reduces hysteresis losses and delays anti-ferroelectric ↔ ferroelectric phase transformation, which increases the electrical energy storage capacity of these materials. Mechanical confinement was observed to provide an increase in energy storage density and efficiency by approximately 38% and 25%, respectively, for the PLZT4 composition. The highest recoverable energy density of 698 m J cm−3 was achieved under compressive stress of a 100 MPa and 60 kV cm−1 applied electric field.

Keywords:
Ferroelectricity Materials science Capacitor Energy storage Ceramic Hysteresis Ferroelectric ceramics Stress (linguistics) Power density Composite material Optoelectronics Condensed matter physics Dielectric Voltage Electrical engineering Power (physics) Thermodynamics Physics

Metrics

57
Cited By
2.49
FWCI (Field Weighted Citation Impact)
47
Refs
0.90
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Ferroelectric and Piezoelectric Materials
Physical Sciences →  Materials Science →  Materials Chemistry
Dielectric materials and actuators
Physical Sciences →  Engineering →  Biomedical Engineering
Advanced Sensor and Energy Harvesting Materials
Physical Sciences →  Engineering →  Biomedical Engineering

Related Documents

JOURNAL ARTICLE

Numerical analysis of ferroelectric/ferroelastic domain switching in ferroelectric ceramics

Wei LuDaining FangKeh-Chih Hwang

Journal:   Computational Materials Science Year: 1997 Vol: 8 (4)Pages: 291-308
JOURNAL ARTICLE

Partial Ferroelastic Domain Mediated Ferroelectric Domain Switching

Yi. ZhangLinze LiYing‐Hao ChuXiaoqing Pan

Journal:   Microscopy and Microanalysis Year: 2017 Vol: 23 (S1)Pages: 1624-1625
JOURNAL ARTICLE

Domain Reorientation in Ferroelectric-Ferroelastic Ceramics

J. A. EirasM. H. Lente

Journal:   Ferroelectrics Year: 2008 Vol: 363 (1)Pages: 79-85
JOURNAL ARTICLE

Prospects for energy harvesting using ferroelectric/ferroelastic switching

Wenbin KangJohn E. Huber

Journal:   Smart Materials and Structures Year: 2018 Vol: 28 (2)Pages: 024002-024002
© 2026 ScienceGate Book Chapters — All rights reserved.