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Enhancing dielectric permittivity for energy-storage devices through tricritical phenomenon

机译:通过三临界现象提高储能器件的介电常数

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摘要

Although dielectric energy-storing devices are frequently used in high voltage level, the fast growing on the portable and wearable electronics have been increasing the demand on the energy-storing devices at finite electric field strength. This paper proposes an approach on enhancing energy density under low electric field through compositionally inducing tricriticality in Ba(Ti,Sn)O3 ferroelectric material system with enlarged dielectric response. The optimal dielectric permittivity at tricritical point can reach to εr = 5.4 × 104, and the associated energy density goes to around 30 mJ/cm3 at the electric field of 10 kV/cm, which exceeds most of the selected ferroelectric materials at the same field strength. The microstructure nature for such a tricritical behavior shows polarization inhomogeneity in nanometeric scale, which indicates a large polarizability under external electric field. Further phenomenological Landau modeling suggests that large dielectric permittivity and energy density can be ascribed to the vanishing of energy barrier for polarization altering caused by tricriticality. Our results may shed light on developing energy-storing dielectrics with large permittivity and energy density at low electric field.
机译:尽管介电储能装置经常在高电压水平上使用,但是在便携式和可穿戴电子设备上的快速增长已经在有限的电场强度下增加了对储能装置的需求。本文提出了一种通过在Ba(Ti,Sn)O3铁电材料体系中通过成分诱导三临界来增强介电响应的方法来提高低电场下的能量密度。在10电场下,三临界点的最佳介电常数可达εr= 5.4×10 4 ,相关的能量密度达到30 mJ / cm 3 kV / cm,在相同的场强下超过了大多数选定的铁电材料。这种三临界行为的微观结构性质显示出纳米级的极化不均匀性,这表明在外部电场下极化率较大。进一步的现象学Landau模型表明,大介电常数和能量密度可归因于三临界引起的极化改变的能垒的消失。我们的结果可能有助于开发在低电场下具有大介电常数和能量密度的储能电介质。

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