Electronic Properties of Two-Dimensional Kagome Lattice Based on Transition Metal Phthalocyanine Heterojunctions

None Jiang Zhou, None Jiang Xue, None Zhao Ji-Jun
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Abstract

Transition metal phthalocyanine molecules serve as building blocks for two-dimensional (2D) metal-organic frameworks with potential applications in optics, electronics, and spintronics. Previous theoretical studies predicted that a two-dimensional transition metal phthalocyanine framework with kagome lattice (kag-TMPc) has stable magnetically ordered properties, which are promising for spintronics and optoelectronics. However, there is a lack of studies on their heterojunctions, which can effectively tune the properties through interlayer coupling despite its weak nature. Here we use density functional theory (DFT) to calculate the electronic properties of eight representative 2D kag-TMPc vertical heterojunctions with two different stackings (AA and AB) and interlayer distances. We found that most of the kag-MnPc-based heterojunctions can maintain the electronic properties of monolayer materials with low bandgap. kag-MnPc/ZnPc are ferromagnetic semiconductors with magnetic exchange energy above 40 meV, regardless of stacking sequences; the electronic properties of kag-MnPc/MnPc heterojunctions change from magnetic half-metal to magnetic semiconductor during the transition from AA stacking to AB stacking. Interestingly, the AB stacked kag-CuPc/CoPc heterojunction is a ferromagnetic semiconductor, and the spin-polarized energy band arrangement changes with the layer spacing: when the layer spacing is at the equilibrium distance, the spin-up and spin-down energy bands are aligned as type II; when the layer spacing increases by 0.2 Å, the spin-up energy bands are aligned as type I, while the spin-down energy bands are aligned as type II energy bands. This distance-dependent spin properties can realize magnetic optoelectronic "switching" and has potential applications in new magnetic field modulated lectromagnetic and optoelectronic devices.
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基于过渡金属酞菁异质结的二维Kagome晶格的电子性质
过渡金属酞菁分子作为二维(2D)金属有机框架的构建块,在光学,电子和自旋电子学中具有潜在的应用。先前的理论研究预测,具有kagome晶格的二维过渡金属酞菁框架(kag-TMPc)具有稳定的磁有序性质,在自旋电子学和光电子学领域具有广阔的应用前景。然而,对于它们的异质结,尽管其性质较弱,但可以通过层间耦合有效地调节性能的研究却很少。本文利用密度泛函理论(DFT)计算了8个具有代表性的具有不同堆叠层(AA和AB)和层间距离的二维kag-TMPc垂直异质结的电子性质。我们发现,大多数kag- mnpc基异质结在低带隙下仍能保持单层材料的电子性能。无论堆叠顺序如何,kag-MnPc/ZnPc都是磁交换能在40 meV以上的铁磁性半导体;kag-MnPc/MnPc异质结的电子性质在AA堆叠到AB堆叠的转变过程中由磁性半金属转变为磁性半导体。有趣的是,AB堆叠的kag-CuPc/CoPc异质结是一种铁磁性半导体,其自旋极化能带排列随层间距的变化而变化:当层间距处于平衡距离时,自旋向上和自旋向下的能带排列为II型;当层间距增加0.2 Å时,自旋向上的能带排列为I型,自旋向下的能带排列为II型。这种与距离相关的自旋特性可以实现磁性光电“开关”,在新型磁场调制电磁和光电子器件中具有潜在的应用前景。
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