Zhentao Wang, Weichen Zhao, Zhaochen Xi, Wenyuan Liu, Da Li, Diming Xu, Guoqiang He, Yang Liu, Guiwei Yan, Jian Bao, Zhen Fang, Xu Liang, Takahiro Shimada, Chang Liu, Tao Xu, Wenfeng Liu, Tao Zhou, Di Zhou
How to further regulate the size and stability of polar nanoregions (PNRs) remains a fundamental constraint to simultaneously achieving ultrahigh efficiency (η) and large recoverable energy density ( W rec ), thereby limiting the development of near-zero-loss dielectric capacitors. Here, guided by phase-field simulations, we propose an entropy-driven local multiphase polarization state in which rhombohedral (R)- and tetragonal (T)-symmetry PNRs of ∼1 nm in size are embedded within a cubic (C) matrix, effectively reducing hysteretic loss by lowering the domain-switching barriers in Bi 0.5 Na 0.5 TiO 3 -based ceramics. Consequently, an ultrahigh η of 95.1%, a large W rec of 6.8 J cm –3, and, simultaneously, an ultrafast discharge time of 240 ns are achieved in the high-entropy (1.76R) ceramic capacitors. The results indicate that entropy regulation can facilitate low-loss dielectric behavior, offering a viable approach for designing near-zero-dissipation energy-storage materials.