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过渡金属多酞菁中电子态布居的自旋诱导切换

Spin-Induced Switching of Electronic State Populations in Transition Metal Polyphthalocyanines.

作者信息

Jagga Deepali, Korepanov Vitaly I, Sedlovets Daria M, Useinov Artur

机构信息

International College of Semiconductor Technology, National Yang Ming Chiao Tung University, Hsinchu 30010, Taiwan.

Institute of Microelectronics Technology and High-Purity Materials, Russian Academy of Science, 142432 Chernogolovka, Russia.

出版信息

Materials (Basel). 2022 Nov 16;15(22):8098. doi: 10.3390/ma15228098.

Abstract

Polyphthalocyanines (PPCs) are a new and promising class of two dimensional materials offering versatile avenues for next generation electronic devices. For organic spintronic devices, PPCs can be engineered to tailor the electric and magnetic properties. In this work, we investigate PPC's monolayers with embedded transition metal atoms (TM = Fe, Ni, Cu), utilizing first principle calculations based on spin-polarized generalized gradient approximation (SGGA). PPC sheets with central TM atoms are simulated for the dispersion curves, electronic density of states (DOS), and projected density of states (PDOS) using quantum atomistic toolkit (Quantum ATK) software. According to simulations, the FePPC supercell with four magnetic moments of Fe, aligned in a parallel ferromagnetic (FM) configuration, show the conductive FM state, while in the case of the anti-parallel antiferromagnetic (AFM) order of the magnetic moments, the material exhibits semiconducting non-magnetic behavior. FM-ordered NiPPC displays a metallic state, which is partly suppressed for AFM-ordered NiPPC. In contrast, non-magnetic CuPPC is found to be the best conductor due to its larger PDOS at the Fermi level among all considered systems.

摘要

多聚酞菁(PPCs)是一类新型且有前景的二维材料,为下一代电子器件提供了多种途径。对于有机自旋电子器件,PPCs可以通过设计来调整其电学和磁学性质。在这项工作中,我们利用基于自旋极化广义梯度近似(SGGA)的第一性原理计算,研究嵌入过渡金属原子(TM = Fe、Ni、Cu)的PPC单层。使用量子原子工具包(Quantum ATK)软件,对具有中心TM原子的PPC片层的色散曲线、电子态密度(DOS)和投影态密度(PDOS)进行了模拟。根据模拟结果,具有四个铁磁矩且呈平行铁磁(FM)构型排列的FePPC超胞呈现出导电的FM态,而在磁矩呈反平行反铁磁(AFM)排列的情况下,该材料表现出半导体非磁性行为。FM有序的NiPPC呈现金属态,而AFM有序的NiPPC的金属态则部分受到抑制。相比之下,由于在所有考虑的体系中,非磁性的CuPPC在费米能级处具有更大的PDOS,所以它被发现是最佳导体。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fb4a/9699300/8734d8b34b5f/materials-15-08098-g001.jpg

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