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锰 - X(X = 氟、氯、溴、碘)共掺杂的锗硒单层:稳定性以及电学、自旋电子学和光学性质

Mn-X (X = F, Cl, Br, I) Co-Doped GeSe Monolayers: Stabilities and Electronic, Spintronic and Optical Properties.

作者信息

He Wenjie, Zhang Xi, Gong Dan, Nie Ya, Xiang Gang

机构信息

College of Physics, Sichuan University, Chengdu 610065, China.

出版信息

Nanomaterials (Basel). 2023 Jun 15;13(12):1862. doi: 10.3390/nano13121862.

Abstract

GeSe monolayer (ML) has recently attracted much interest due to its unique structure and excellent physical properties that can be effectively tuned through single doping of various elements. However, the co-doping effects on GeSe ML are rarely studied. In this study, the structures and physical properties of Mn-X (X = F, Cl, Br, I) co-doped GeSe MLs are investigated by using first-principle calculations. The formation energy and phonon disspersion analyses reveal the stability of Mn-Cl and Mn-Br co-doped GeSe MLs and instability of Mn-F and Mn-I co-doped GeSe MLs. The stable Mn-X (X = Cl, Br) co-doped GeSe MLs exhibit complex bonding structures with respect to Mn-doped GeSe ML. More importantly, Mn-Cl and Mn-Br co-doping can not only tune magnetic properties, but also change the electronic properties of GeSe MLs, which makes Mn-X co-doped GeSe MLs indirect band semiconductors with anisotropic large carrier mobility and asymmetric spin-dependent band structures. Furthermore, Mn-X (X = Cl, Br) co-doped GeSe MLs show weakened in-plane optical absorption and reflection in the visible band. Our results may be useful for electronic, spintronic and optical applications based on Mn-X co-doped GeSe MLs.

摘要

由于其独特的结构和优异的物理性能,且这些性能可通过各种元素的单掺杂有效调控,近年来,锗硒单层(ML)备受关注。然而,关于锗硒ML的共掺杂效应的研究却很少。在本研究中,通过第一性原理计算研究了Mn-X(X = F、Cl、Br、I)共掺杂锗硒ML的结构和物理性能。形成能和声子色散分析揭示了Mn-Cl和Mn-Br共掺杂锗硒ML的稳定性以及Mn-F和Mn-I共掺杂锗硒ML的不稳定性。相对于Mn掺杂的锗硒ML,稳定的Mn-X(X = Cl、Br)共掺杂锗硒ML表现出复杂的键合结构。更重要的是,Mn-Cl和Mn-Br共掺杂不仅可以调节磁性能,还能改变锗硒ML的电子性能,这使得Mn-X共掺杂锗硒ML成为具有各向异性大载流子迁移率和不对称自旋依赖能带结构的间接带隙半导体。此外,Mn-X(X = Cl、Br)共掺杂锗硒ML在可见光波段的面内光吸收和反射减弱。我们的研究结果可能对基于Mn-X共掺杂锗硒ML的电子、自旋电子和光学应用有用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f26d/10301037/65e483c8dba8/nanomaterials-13-01862-g001.jpg

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