论文标题

卤化物还原电气的第一原理设计:磁性和拓扑阶段

First-Principles Design of Halide-Reduced Electrides: Magnetism and Topological Phases

论文作者

Yu, Tonghua, Hirayama, Motoaki, Flores-Livas, José A., Huebsch, Marie-Therese, Nomoto, Takuya, Arita, Ryotaro

论文摘要

我们提出了一种从传统材料衍生的潜在电气的设计方案。从基于稀土的三元卤化物开始,我们排除了卤素并进行全局结构优化,以获得热力学稳定或可稳定的相位,但具有限制在间质空腔内部的电子过量。然后,用磁性灯笼的化学取代诱导自旋偏振态。为了证明我们的方法的能力,我们用11个三元卤化物进行测试,并成功预测了受3个不同化学计量类别的非磁性电气的30稳定阶段,并通过GD进行化学替代而依次通过28个磁电进行了测试。在这58个设计的电气中,有56次是第一次发现的。对两个电气系统$ a $ c($ a = $ la,gd)和Orthorhombic $ a_2 $ ge($ a = $ y,gd)进行了详尽的研究以体现一组预测的晶体。有趣的是,在没有旋转轨道耦合的情况下,这两个系统都是拓扑结节线电气(TNLE),在$ a = $ gd的情况下,旋转轨道耦合和明显的自旋偏振态。我们的工作建立了一种新型的功能电气设计计算方法,并突出了嵌入电气材料中的磁性和拓扑阶段。

We propose a design scheme for potential electrides derived from conventional materials. Starting with rare-earth-based ternary halides, we exclude halogens and perform global structure optimization to obtain thermodynamically stable or metastable phases but having an excess of electrons confined inside interstitial cavities. Then, spin-polarized interstitial states are induced by chemical substitution with magnetic lanthanides. To demonstrate the capability of our approach, we test with 11 ternary halides and successfully predict 30 stable and metastable phases of nonmagnetic electrides subject to 3 different stoichiometric categories, and successively 28 magnetic electrides via chemical substitution with Gd. 56 out of these 58 designed electrides are discovered for the first time. Two electride systems, the monoclinic $A$C ($A=$ La, Gd) and the orthorhombic $A_2$Ge ($A=$ Y, Gd), are thoroughly studied to exemplify the set of predicted crystals. Interestingly, both systems turn out to be topological nodal line electrides (TNLE) in the absence of spin-orbit coupling and manifest spin-polarized interstitial states in the case of $A=$ Gd. Our work establishes a novel computational approach of functional electrides design and highlights the magnetism and topological phases embedded in electrides.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源