论文标题
二维有机无机室温多效率
Two-Dimensional Organic-Inorganic Room-Temperature Multiferroic
论文作者
论文摘要
有机无机多效应对于下一代电子设备有希望。迄今为止,已经报道了数十种有机无机多魔术。但是,其中大多数显示的磁性库丽温度远低于室温,这极大地阻碍了其应用。在此,通过进行第一原则计算并构建有效的哈密顿量模型,我们揭示了在二维CR(PYZ)2(PYZ)2(PYZ =吡嗪)中的分子轨道介导的磁耦合机制,以及分子在确定金属类型之间的磁耦合类型中发挥的作用。基于这些,我们证明,可以通过在CR(PYZ)2中引入铁电性的同时,在保持分子无关的同时,可以通过在CR(PYZ)2中引入铁电性,可以合理设计一种二维有机室 - 有机室 - 室温多疗法(H-Fpyz)2(H-Fpyz)2(H-Fpyz = Half-Fpyz = Half-Fpyz)。我们的工作不仅揭示了2D有机无机系统中的磁耦合的起源,而且还提供了一种通过理性设计室温多表情材料的方法。
Organic-inorganic multiferroics are promising for the next generation of electronic devices. To date, dozens of organic-inorganic multiferroics have been reported; however, most of them show magnetic Curie temperature much lower than room temperature, which drastically hampers their application. Here, by performing first-principle calculations and building effective model Hamiltonians, we reveal a molecular orbital-mediated magnetic coupling mechanism in two-dimensional Cr(pyz)2 (pyz=pyrazine), and the role that the valence state of the molecule plays in determining the magnetic coupling type between metal ions. Based on these, we demonstrate that a two-dimensional organic-inorganic room-temperature multiferroic, Cr(h-fpyz)2 (h-fpyz= half-fluoropyrazine), can be rationally designed by introducing ferroelectricity in Cr(pyz)2 while keeping the valence state of the molecule unchanged. Our work not only reveals the origin of magnetic coupling in 2D organic-inorganic systems, but also provides a way to design room temperature multiferroic materials rationally.