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在宽温度范围内具有巨大介电常数的三方弛豫铁电材料。

Trirelaxor Ferroelectric Material with Giant Dielectric Permittivity over a Wide Temperature Range.

作者信息

Wang Yan, Wang Dong, Xu Jingzhe, Zhong Lisheng, Gao Jinghui, Xiao Andong, Wu Ming, He Zhixin, Yao Ruifeng, Li Shengtao, Ren Xiaobing

机构信息

State Key Laboratory of Electrical Insulation and Power Equipment and Multi-disciplinary Materials Research Center, Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.

Center of Microstructure Science, Frontier Institute of Science and Technology, Xi'an Jiaotong University, Xi'an 710049, China.

出版信息

ACS Appl Mater Interfaces. 2021 Jul 21;13(28):33272-33281. doi: 10.1021/acsami.1c07537. Epub 2021 Jul 9.

Abstract

Advanced ferroelectrics with a combination of large dielectric response and good temperature stability are crucial for many technologically important electronic devices and electrical storage/power equipment. However, the two key factors usually do not go hand in hand, and achieving high permittivity is normally at the expense of sacrificing temperature stability. This trade-off relation is eased but not fundamentally remedied using relaxor-type materials which are known to have a diffuse permittivity peak at their relaxor transition temperatures. Here, we report an anomalous trirelaxor phenomenon in a barium titanate system and show that it can lead to a giant dielectric permittivity (ε ≈ 18 000) over a wide temperature range ( ≈ 34K), which successfully overcomes a long-standing permittivity-stability trade-off. Moreover, the enhancement in the dielectric properties also yields a desired temperature-insensitive electrocaloric performance for the trirelaxor ferroelectrics. Microstructure characterization and phase-field simulations reveal a mixture of tetragonal, orthorhombic, and rhombohedral polar nanoregions over a broad temperature window in trirelaxor ferroelectrics, which is responsible for this combination of giant dielectric permittivity and good temperature stability. This finding provides an effective approach in designing advanced ferroelectrics with high performance and thermal stability.

摘要

兼具大介电响应和良好温度稳定性的先进铁电体对于许多具有重要技术意义的电子设备和电存储/电力设备至关重要。然而,这两个关键因素通常并不能兼得,实现高介电常数通常是以牺牲温度稳定性为代价的。使用弛豫型材料可以缓解这种权衡关系,但并不能从根本上解决,弛豫型材料在其弛豫转变温度处具有弥散的介电常数峰值。在此,我们报道了钛酸钡体系中的一种异常三弛豫现象,并表明它可以在宽温度范围(约34K)内导致巨大的介电常数(ε≈18000),成功克服了长期存在的介电常数 - 稳定性权衡。此外,介电性能的增强还为三弛豫铁电体带来了所需的对温度不敏感的电热性能。微观结构表征和相场模拟揭示了三弛豫铁电体在宽温度窗口内四方、正交和菱面体极性纳米区域的混合,这是这种巨大介电常数和良好温度稳定性相结合的原因。这一发现为设计具有高性能和热稳定性的先进铁电体提供了一种有效方法。

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