材料科学
电介质
相间
电容器
纳米复合材料
铁电性
纳米尺度
复合材料
复合数
介电强度
光电子学
沉积(地质)
热的
陶瓷
表面能
纳米技术
化学气相沉积
纳米颗粒
储能
聚合物
介电损耗
热稳定性
导电体
作者
Hyunseok Song,Ke Xu,Donggeon Baek,Dayeong Hur,Minjae Kim,Hyun‐Cheol Song,Dae‐Yong Jeong,Houbing Huang,Jungho Ryu
摘要
ABSTRACT Enhancing the energy‐storage performance of dielectric capacitors requires the simultaneous increase of saturated polarization, suppression of remanent polarization, and improvement of dielectric breakdown strength (DBS). Although nanocomposite and multiphase strategies exploiting interfacial effects have been widely investigated to achieve high energy density, it remains thermodynamically challenging to fabricate composite architectures in which multiple ferroelectric phases coexist as discrete nanoscale crystals, making it difficult to sustain true multiphase heterointerfaces. We address these challenges by fabricating a multiphase nano‐clustered (MN) structure composed of three ferroelectrics‐BaTiO 3 (BT), PbZrO 3 (PZ), and PbTiO 3 (PT)‐using a room‐temperature aerosol deposition (AD) process without post‐thermal treatment. This route effectively suppresses interphase reactions and preserves the intrinsic crystal structure of each constituent, thereby enabling the formation of three‐dimensional nanoscale interfaces that cannot be achieved through conventional sintering. Owing to the large work‐function differences among BT, PZ, and PT, interfacial charge trapping is induced, which suppresses space‐charge transport and inhibits breakdown‐path propagation. The MN BT–PZ–PT film exhibits a DBS of 5.8 MV cm −1 (∼260% enhancement) and a recoverable energy density of 68.6 J cm −3 (∼300% increase) compared with a single‐phase BPZT film. Despite room‐temperature fabrication, the composite demonstrates excellent energy‐storage performance, thermal stability, and fatigue endurance, enhanced DBS.
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