Regulating polar nanoregion dynamics for enhanced DC-bias stability and energy storage in relaxor ferroelectric ceramics

Dielectric materials for multilayer ceramic capacitors must maintain stable permittivity under high electric fields, yet conventional systems often suffer from DC-bias-induced degradation due to coupling between polarization response and field-induced saturation. Here, we report a relaxor engineering strategy in (1 − x )[0.7(Na 0.4 K 0.1 Bi 0.5 )TiO 3 -0.3(Sr 0.2 Bi 0.7 )TiO 3 ]– x CaSnO 3 ceramics to mitigate the trade-off between dielectric permittivity and DC-bias stability. The incorporation of CaSnO 3 , which acts as a non-ferroelectric component with negligible intrinsic polarization contribution, induces lattice distortion and compositional heterogeneity. These structural perturbations suppress the dielectric peak and restrain long-range ferroelectric ordering, thereby improving the bias stability of ceramics. Consequently, the ceramics exhibit typical relaxor behavior with slim polarization–electric-field loops, low remanent polarization, and thermally robust polarization characteristics. Most importantly, DC-bias stability is markedly improved, where the dielectric variation under ±40 kV/cm decreases from over 30% to within ±5.2% with increasing CaSnO 3 content, while retaining relatively high permittivity. This behavior is attributed to the suppression of polar nanoregions by CaSnO 3 incorporation, which reduces dielectric peak intensity and field sensitivity while improving bias stability. These results suggest that compositional suppression of polar nanoregion activity is an effective strategy for developing high-reliability dielectric materials.

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Publication Details

Journal
Journal of Energy Storage
Published
2026-10-05
DOI
https://doi.org/10.1016/j.est.2026.124915
Primary Topic
Ferroelectric and Piezoelectric Materials
Type
article
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article

Regulating polar nanoregion dynamics for enhanced DC-bias stability and energy storage in relaxor ferroelectric ceramics

Fukang Chen, Ruiyi Jing, Leiyang Zhang, Linpeng Tang et al.
Journal of Energy Storage
Ferroelectric and Piezoelectric Materials
article

Regulating polar nanoregion dynamics for enhanced DC-bias stability and energy storage in relaxor ferroelectric ceramics

Fukang Chen, Ruiyi Jing, Leiyang Zhang, Linpeng Tang, Li Jin
article en

Abstract

Dielectric materials for multilayer ceramic capacitors must maintain stable permittivity under high electric fields, yet conventional systems often suffer from DC-bias-induced degradation due to coupling between polarization response and field-induced saturation. Here, we report a relaxor engineering strategy in (1 − x )[0.7(Na 0.4 K 0.1 Bi 0.5 )TiO 3 -0.3(Sr 0.2 Bi 0.7 )TiO 3 ]– x CaSnO 3 ceramics to mitigate the trade-off between dielectric permittivity and DC-bias stability. The incorporation of CaSnO 3 , which acts as a non-ferroelectric component with negligible intrinsic polarization contribution, induces lattice distortion and compositional heterogeneity. These structural perturbations suppress the dielectric peak and restrain long-range ferroelectric ordering, thereby improving the bias stability of ceramics. Consequently, the ceramics exhibit typical relaxor behavior with slim polarization–electric-field loops, low remanent polarization, and thermally robust polarization characteristics. Most importantly, DC-bias stability is markedly improved, where the dielectric variation under ±40 kV/cm decreases from over 30% to within ±5.2% with increasing CaSnO 3 content, while retaining relatively high permittivity. This behavior is attributed to the suppression of polar nanoregions by CaSnO 3 incorporation, which reduces dielectric peak intensity and field sensitivity while improving bias stability. These results suggest that compositional suppression of polar nanoregion activity is an effective strategy for developing high-reliability dielectric materials.

Journal of Energy StorageVol. 182
Xi'an Jiaotong University (CN)
Openalex Percentile: Top 27%
Ferroelectric and Piezoelectric Materials
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