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Influence of thermal strains on the electrocaloric and dielectric properties of ferroelectric nanoshells

机译:热应变对铁电纳米壳电热和介电性能的影响

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摘要

The electrocaloric effect and dielectric tunability of BaTiO₃ferroelectric nanoshells on Si and MgO cores are investigated using the modified Landau–Ginzburg–Devonshire theory, in which the surface tension and thermal strain are taken into account. The numerical results exhibit a peak of electrocaloric coefficient near the critical nanoshell thickness accompanied with the size-driven phase transition. In addition to the enhanced adiabatic temperature difference, the compressive thermal strain also significantly improves the dielectric tunability. More importantly, the ferroelectric nanoshell displays pronounced electrocaloric effect: ΔT(Tm)=2.09 K for the nanoshell on Si core and ΔT(Tm)=2.33 K on MgO core, respectively. Essentially, the ferroelectric nanoshell provides an effective means to acquire good electrocaloric effect and high dielectric tunability by adjusting the wall thickness, core radius, annealing temperature, and various core materials, which may effectively contribute to the stress level in the ferroelectric nanoshell.
机译:利用改进的Landau–Ginzburg–Devonshire理论研究了BaTiO₃铁电纳米壳在Si和MgO核上的电热效应和介电可调性,其中考虑了表面张力和热应变。数值结果显示在临界纳米壳厚度附近的电热系数峰值,伴随着尺寸驱动的相变。除了增加绝热温差外,压缩热应变还显着改善了介电可调性。更重要的是,铁电纳米壳表现出明显的电热效应:在Si核上的纳米壳的ΔT(Tm)= 2.09 K,在MgO核上的ΔT(Tm)= 2.33K。本质上,铁电纳米壳通过调节壁厚,芯半径,退火温度和各种芯材料,提供了获得良好电热效应和高介电可调性的有效手段,这可以有效地有助于铁电纳米壳中的应力水平。

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