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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Microscopic mechanistic study on the multiferroic of R2CoMnO6/La2CoMnO6 (R = Ce, Pr, Nd, Pm, Sm, Gd, Tb, Dy, Ho, Er, Tm) by chemical and hydrostatic pressures: a first-principles calculation
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Microscopic mechanistic study on the multiferroic of R2CoMnO6/La2CoMnO6 (R = Ce, Pr, Nd, Pm, Sm, Gd, Tb, Dy, Ho, Er, Tm) by chemical and hydrostatic pressures: a first-principles calculation

机译:R2CoMnO6 / La2CoMnO6(R = Ce,Pr,Nd,Pm,Sm,Gd,Tb,Dy,Ho,Er,Tm)的多铁性的微观力学研究:第一性原理计算

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摘要

A specific class of multiferroic superlattices R2CoMnO6/La2CoMnO6 (R = Ce, Pr, Nd, Pm, Sm, Gd, Tb, Dy, Ho, Er, Tm), which displayed observable electric polarizations and considerable magnetization, were investigated based on density functional theory. The multiferroic behavior was induced by both of the a(-)a(-)c(+) Glazer rotation patterns of BO6 (CoO6 and MnO6) octahedra and ferromagnetic coupling in the magnetic ordered superlattices. In addition, the ferroelectric and ferromagnetic properties of R2CoMnO6/La2CoMnO6 superlattices can be tuned by chemical pressure and hydrostatic pressure, with the former being more effective in tuning magnetoelectric properties than the latter. For chemical pressure, the incorporation of lanthanide ions promoted an increase of BO6 octahedral tilting, reflected by the sharp decrease of Co-O3-Mn bond angles in the R-layer along the c axis. By contrast, the hydrostatic pressure acts on all three directions of the superlattice so that the change in Co-O-Mn bond angles is relatively small, therefore the octahedral distortion is much smaller than that caused by chemical pressure. Consequently, the electric polarization and magnetization changed more slowly. Our first-principles simulations proposed a series of rational multiferroic superlattices with tunable ferromagnetism and ferroelectricity by chemical and hydrostatic pressures, with expectation to be applied as novel spintronic materials.
机译:基于密度泛函研究了一类特殊的多铁超晶格R2CoMnO6 / La2CoMnO6(R = Ce,Pr,Nd,Pm,Sm,Gd,Tb,Dy,Ho,Er,Tm),显示了可观察到的极化和相当大的磁化强度。理论。多铁性行为是由BO6(CoO6和MnO6)八面体的a(-)a(-)c(+)Glazer旋转模式和磁性有序超晶格中的铁磁耦合共同引起的。此外,R2CoMnO6 / La2CoMnO6超晶格的铁电和铁磁特性可以通过化学压力和静水压力来调节,前者在调节磁电特性方面比后者更有效。对于化学压力,镧系元素离子的引入促进了BO6八面体倾斜的增加,这反映在R层沿c轴的Co-O3-Mn键角急剧减小。相比之下,静水压力作用在超晶格的所有三个方向上,因此Co-O-Mn键角的变化相对较小,因此八面体形变比化学压力引起的形变小得多。因此,极化和磁化变化更慢。我们的第一性原理模拟通过化学和流体静压力提出了一系列具有可调铁磁性和铁电的有理多铁性超晶格,并有望作为新型自旋电子材料应用。

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