Structural order differentiation unlocks the energy storage performance of commensurate antiferroelectric ceramics

G Guanglong Ge J Jin Qian C Cheng Shi C Chao Sun (Center for Combustion Energy, Department of Energy and Power Engineering, and Key Laboratory for Thermal Science and Power Engineering of Ministry of Education) S Simin Wang H Hongguang Wang T Tengfei Hu (State Key Laboratory of Radiation Medicine and Protection, School of Radiation Medicine and Protection, Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions) P Peter A. van Aken (Max Planck Institute for Solid State Research, Heisenbergstr. 1, Stuttgart 70569, Germany) B Bo Shen (Department of Chemistry) J Jiwei Zhai

Abstract

Abstract Commensurate modulated antiferroelectric ceramics exhibit limited application prospects, a quasi transient antiferroelectric-ferroelectric phase transition has locked their energy storage performance. Highly homogeneous oxygen octahedra set produce only one type of antiferrodistortion-ferrodistortion transition, followed by a rapid triggering of the antiferroelectric-ferroelectric phase transition. Here, we propose a strategy of structural order differentiation engineering to disrupt the homogeneity of oxygen octahedra by initiator/enhancer co-substitution, and we have successfully unlocked the energy storage performance of commensurate modulated antiferroelectric ceramics. By constructing oxygen octahedra sets with highly differentiated rotational distortions, an energy storage density of 23.11 J/cm 3 , an energy storage efficiency of 85.55%, and a discharge energy density of up to 16.45 J/cm 3 are simultaneously achieved, which is superior to other antiferroelectric ceramics and dielectric ceramics. By limiting the doping window, the commensurate modulation characteristics of polarization order can be maintained, which ensures the maximum polarization. A highly differentiated octahedra rotational distortion yields a multi-stage antiferrodistortion-ferrodistortion transition and a coexistence of polymorphic ferroelectric phases, significantly prolonging the polarization process. The proposed structural order differentiation shows guiding significance for the development of antiferroelectric, and the obtained energy storage performance promotes the practical applications of antiferroelectric ceramic capacitors.

Article Details

Volume / Issue Vol. 16, Issue 1
Published October 31, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (10)

G

Guanglong Ge

J

Jin Qian

C

Cheng Shi

C

Chao Sun

Center for Combustion Energy, Department of Energy and Power Engineering, and Key Laboratory for Thermal Science and Power Engineering of Ministry of Education

S

Simin Wang

H

Hongguang Wang

T

Tengfei Hu

State Key Laboratory of Radiation Medicine and Protection, School of Radiation Medicine and Protection, Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions

P

Peter A. van Aken

Max Planck Institute for Solid State Research, Heisenbergstr. 1, Stuttgart 70569, Germany

B

Bo Shen

Department of Chemistry

J

Jiwei Zhai