TY - JOUR
T1 - Simulation-Guided Engineering of Hierarchical Domain Structures for High-Efficiency MLCCs
AU - Ren, Jia Jia
AU - Xi, Zhaochen
AU - Xu, Diming
AU - Jing, Hongmei
AU - Liu, Wenyuan
AU - Liu, Jinnan
AU - Wang, Zhentao
AU - Liu, Yang
AU - Zhou, Tao
AU - Huang, Houbing
AU - Zhao, Weichen
AU - Zhou, Di
N1 - Publisher Copyright:
© 2026 American Chemical Society.
PY - 2026/8/19
Y1 - 2026/8/19
N2 - The miniaturization of modern electronic systems demands multilayer ceramic capacitors (MLCCs) capable of delivering high energy density without compromising efficiency or reliability. Herein, guided by phase-field simulations, this work establishes a rational design protocol that demonstrates the superiority of paraelectric modulation in maintaining robust polarization. We implement this strategy within a 0.88 Ba0.8Sr0.2TiO3-0.12Bi(Li0.5Ta0.5)O3 system via precise atomic-scale regulation. Multiscale characterization uncovers a critical structural duality: while high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) confirms the breakdown of global domains into polar nanoregions (PNRs), which are essential for minimizing hysteresis; piezoelectric force microscopy (PFM) and phase-field simulations reveal the preservation of medium-to-long-range ferroelectric correlations. This hierarchical architecture effectively reconciles high polarization with low energy loss. Consequently, the fabricated MLCCs achieve a high recoverable energy density of 10.17 J/cm3 and an exceptional efficiency of 98.3%. Furthermore, the devices exhibit robust operational stability under 691 kV/cm. This work provides a comprehensive pathway for advancing dielectric energy storage technology from theoretical prediction to reliable device fabrication.
AB - The miniaturization of modern electronic systems demands multilayer ceramic capacitors (MLCCs) capable of delivering high energy density without compromising efficiency or reliability. Herein, guided by phase-field simulations, this work establishes a rational design protocol that demonstrates the superiority of paraelectric modulation in maintaining robust polarization. We implement this strategy within a 0.88 Ba0.8Sr0.2TiO3-0.12Bi(Li0.5Ta0.5)O3 system via precise atomic-scale regulation. Multiscale characterization uncovers a critical structural duality: while high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM) confirms the breakdown of global domains into polar nanoregions (PNRs), which are essential for minimizing hysteresis; piezoelectric force microscopy (PFM) and phase-field simulations reveal the preservation of medium-to-long-range ferroelectric correlations. This hierarchical architecture effectively reconciles high polarization with low energy loss. Consequently, the fabricated MLCCs achieve a high recoverable energy density of 10.17 J/cm3 and an exceptional efficiency of 98.3%. Furthermore, the devices exhibit robust operational stability under 691 kV/cm. This work provides a comprehensive pathway for advancing dielectric energy storage technology from theoretical prediction to reliable device fabrication.
KW - exceptional efficiency
KW - multilayer ceramic capacitors
KW - paraelectric modulation
KW - phase-field simulations
KW - robust operational stability
UR - https://www.scopus.com/pages/publications/105047952970
U2 - 10.1021/acsami.6c06900
DO - 10.1021/acsami.6c06900
M3 - Article
C2 - 42574698
AN - SCOPUS:105047952970
SN - 1944-8244
VL - 18
SP - 44138
EP - 44147
JO - ACS applied materials & interfaces
JF - ACS applied materials & interfaces
IS - 32
ER -