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Comparative first-principles studies of prototypical ferroelectric materials by LDA, GGA, and SCAN meta-GGA

机译:LDA,GGA和扫描元GGA的原型铁电材料的比较第一原理研究

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摘要

Originating from a broken spatial inversion symmetry, ferroelectricity is a functionality of materials with an electric dipole that can be switched by external electric fields. Spontaneous polarization is a crucial ferroelectric property, and its amplitude is determined by the strength of polar structural distortions. Density functional theory (DFT) is one of the most widely used theoretical methods to study ferroelectric properties, yet it is limited by the levels of approximations in electron exchange-correlation. On the one hand, the local density approximation (LDA) is considered to be more accurate for the conventional perovskite ferroelectrics such as BaTiO_3 and PbTiO_3 than the generalized gradient approximation (GGA),which suffers from the so-called super-tetragonality error.On the other hand, GGA is more suitable for hydrogen-bonded ferroelectrics than LDA, which largely overestimates the strength of hydrogen bonding in general.We show here that the recently developed general-purpose strongly constrained and appropriately normed (SCAN) meta-GGA functional significantly improves over the traditional LDA/GGA for structural, electric, and energetic properties of diversely bonded ferroelectric materials with a comparable computational effort and thus enhances largely the predictive power of DFT in studies of ferroelectric materials. We also address the observed system-dependent performances of LDA and GGA for ferroelectrics from a chemical bonding point of view.
机译:来自残破的空间反转对称性,铁电性是具有电偶极物的材料的功能,可以由外部电场切换。自发极化是一个至关重要的铁电特性,其振幅由极性结构扭曲的强度决定。密度泛函理论(DFT)是研究铁电特性的最广泛使用的理论方法之一,但它受电子交换相关中近似水平的限制。一方面,局部密度近似(LDA)被认为更准确地用于比广义梯度近似(GGA)等BATIO_3和PBTIO_3更准确,这是遭受所谓的超级四角误差的另一方面,GGA更适合于LDA的氢键键合的铁电,这在很大程度上高估了氢键的强度。我们在此显示最近开发的通用强度受到强烈约束和适当规范的(扫描)META-GGA功能显着通过具有相当的计算努力的多种粘合铁电材料的结构,电动和高能量特性的传统LDA / GGA改善,从而提高了铁电材料研究中DFT的预测力。我们还通过化学粘合的观点来解决LDA和GGA的观察到的系统依赖性性能。

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  • 来源
    《Physical Review. B, Condensed Matter》 |2017年第4期|035143.1-035143.16|共16页
  • 作者单位

    Department of Physics Temple University Philadelphia Pennsylvania 19122 USA Department of Physics University of Texas at El Paso El Paso Texas 79968 USA;

    Department of Physics University of Texas at El Paso El Paso Texas 79968 USA;

    Department of Physics Temple University Philadelphia Pennsylvania 19122 USA Department of Chemistry Temple University Philadelphia Pennsylvania 19122 USA;

    Department of Physics Temple University Philadelphia Pennsylvania 19122 USA;

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