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首页> 外文期刊>Physical review.B.Condensed matter and materials physics >Asymmetric ferroelectricity by design in atomic-layer superlattices with broken inversion symmetry
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Asymmetric ferroelectricity by design in atomic-layer superlattices with broken inversion symmetry

机译:通过碎片对称的原子层超晶格设计不对称铁电性

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摘要

In atomic-layer superlattices constructed using three constituent phases, CaTiO_3, SrTiO_3, and BaTiO_3, the stacking sequence of the atomic layers is found to control the symmetry of the high-temperature dielectric response. In such a superlattice when a nanostructured asymmetric strain is programmed into the lattice via the stacking order, the natural symmetry at high temperatures is removed and a polarized sample is obtained in which the polarization increases as the temperature is lowered. In contrast to a ferroelectric characterized by a bistable ground state with two equal and opposite electronic polarizations, our experiments show evidence of asymmetric ferroelectric correlations that set in when such a sample becomes hysteretic below a temperature T_x, with two unequal polarization states. We further show that both the magnitude and direction of this ferroelectric asymmetry can be controlled by the engineered atomic-layer stacking order and periodicity of the superlattice.
机译:在使用三个组成阶段构建的原子层超大图格子中,发现原子层的堆叠序列来控制高温介质响应的对称性。 在通过堆叠顺序被编程到晶格中的纳米结构的不对称菌株中时,除去高温下的自然对称性,得到极化样品,其中随着温度降低,偏振量增加。 与具有两个相同且相反的电子偏振的双稳态地态的铁电相比,我们的实验表明,当这种样品变得低于温度T_X的滞后时,我们的实验表明了所设定的不对称铁电相关的证据。 我们进一步表明,该铁电不对称的幅度和方向可以通过设计的原子层堆叠顺序和超晶格的周期来控制。

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  • 来源
    《Physical review.B.Condensed matter and materials physics》 |2021年第8期|085103.1-085103.8|共8页
  • 作者单位

    Department of Physics University of North Florida Jacksonville Florida 32224 USA;

    Department of Physics University of North Florida Jacksonville Florida 32224 USA;

    Department of Materials Science and Engineering University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA Materials Research Laboratory University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    Department of Materials Science and Engineering University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA Materials Research Laboratory University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    Department of Physics University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    School of Molecular Sciences Arizona State University Tempe Arizona 85287 USA;

    Department of Materials Science and Engineering University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA Materials Research Laboratory University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    Department of Physics University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

    Materials Research Laboratory University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA Department of Physics University of Illinois at Urbana-Champaign Urbana Illinois 61801 USA;

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