电介质
电容器
低温学
储能
偶极子
材料科学
光电子学
磁滞
铁电性
极地的
工作(物理)
凝聚态物理
工程物理
纳米技术
消散
相(物质)
计算机数据存储
低温冷却器
能量(信号处理)
相变
量子光学
超级电容器
化学物理
作者
Yangyang Si,Denan Li,Yijie Li,Changsheng Chen,Jingxuan Li,Chao Zhou,Hao Xiong,Tianfu Zhang,Wei Liao,Z Ren,Huaicheng Yuan,Dong Li,Jing-Kai Qin,Cheng-Yan Xu,Y C Zhu,Yunlong Tang,Sujit Das,Jieun Kim,Junling Wang,Hao Pan
摘要
Cryogenic energy storage is vital for frontier technologies including deep-space exploration and quantum computing, yet conventional electrochemical energy systems fail below ~230 K due to frozen ion migration. While relaxor-based dielectric capacitors provide high efficiency at room temperature, the intrinsic freezing/growth of polar nanodomains at extended cryogenic regime limits their applications with deteriorated hysteresis losses. Here, we realize superior cryogenic energy-storage performance by designing unit-cell-level disordered dipole-glass state in Pb0.6Sr0.4ZrO3 thin films with composition near antiferroelectric-paraelectric phase boundary. The antiferroelectric-derived dipole-glass introduces enhanced unit-cell-level complexity of dipole interaction that suppresses long-range ferroelectric order. This enables ultralow-hysteresis operation (efficiency > 88%) down to 4 K, delivering record-high energy density (211 J/cm^3) at 9 MV/cm, stability over 10^8 charge/discharge cycles and microsecond-scale charge/discharge capability. This work establishes a dipole-glass paradigm for cryogenic dielectric capacitors, opening a new avenue to highly-efficient energy-storage systems with broad applications in frontier nanoelectronics.
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