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首页> 外文期刊>Physical review >Signatures of electron-magnon interaction in charge and spin currents through magnetic tunnel junctions: A nonequilibrium many-body perturbation theory approach
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Signatures of electron-magnon interaction in charge and spin currents through magnetic tunnel junctions: A nonequilibrium many-body perturbation theory approach

机译:通过磁隧道结的电荷和自旋电流中的电子-马农相互作用的签名:一种非平衡多体微扰理论方法

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We develop a numerically exact scheme for resumming certain classes of Feynman diagrams in the self-consistent perturbative expansion for the electron and magnon self-energies in the nonequilibrium Green function formalism applied to a coupled electron-magnon (e-m) system driven out of equilibrium by the applied finite bias voltage. Our scheme operates with the electronic and magnonic GFs and the corresponding self-energies viewed as matrices in the Keldysh space, rather than conventionally extracting their retarded and lesser components, which greatly simplifies translation of diagrams into compact mathematical expressions and their computational implementation. This is employed to understand the effect of inelastic e-m scattering on charge and spin current vs bias voltage V_b in F/I/F (F-ferromagnet; I-insulating barrier) magnetic tunnel junctions (MTJs), which are modeled on a quasi-one-dimensional (quasi-1D) tight-binding lattice for the electronic subsystem and quasi-1D Heisenberg model for the magnonic, subsystem. For this purpose, we evaluate the Fock diagram for the electronic self-energy and the electron-hole polarization bubble diagram for the magnonic self-energy. The respective electronic and magnonic GF lines within these diagrams are the fully interacting ones, thereby requiring to solve the ensuing coupled system of nonlinear integral equations self-consistently. Despite using the quasi-1D model and treating e-m interaction in many-body fashion only within a small active region consisting of few lattice sites around the F/I interface, our analysis captures essential features of the so-called zero-bias anomaly observed [V. Drewello, J. Schmalhorst, A. Thomas, and G. Reiss, Phys. Rev. B 77, 014440 (2008)] in both MgO- and AlO_x-based realistic 3D MTJs where the second derivative d~2I/dV_b~2 (i.e., inelastic electron tunneling spectrum) of charge current exhibits sharp peaks of opposite sign on either side V_b = 0. We show that this is closely related to a substantially modified magnonic density of states (DOS) after the e-m interaction is turned on-the magnonic bandwidth over which DOS is nonzero becomes broadened, thereby making e-m scattering at arbitrary small bias voltage possible, while DOS also acquires peaks (on the top of a continuous background) signifying the formation of quasibound states of magnons dressed by the cloud of electron-hole pair excitations. We also demonstrate that the sum of electronic spin currents in all of the semi-infinite leads attached to the active region quantifies the loss of spin angular momentum carried away from the active region by the magnonic spin current.
机译:我们开发了一个数值精确的方案,用于恢复非平衡格林函数形式论中电子和磁子自能的自洽摄动展开中某些类的费曼图,该函数应用于由非平衡驱动的耦合电子-马农(em)系统施加的有限偏置电压。我们的方案使用电子和大型GF和在Keldysh空间中被视为矩阵的相应自能量运行,而不是按常规方式提取它们的延迟分量和较小分量,这极大地简化了将图转换为紧凑的数学表达式及其计算实现的过程。这可用于了解非弹性em散射对F / I / F(F-铁磁体; I绝缘势垒)磁隧道结(MTJ)中电荷和自旋电流与偏置电压V_b的影响,其模拟为准电子子系统为一维(准1D)紧束缚晶格,而强磁子系统为准1D Heisenberg模型。为此,我们评估了电子自能的Fock图和电子自能的电子-空穴极化气泡图。这些图中的相应的电子和大型GF线是完全相互作用的,因此需要自洽解决非线性积分方程的随后耦合系统。尽管使用准1D模型并仅在由F / I界面周围几乎没有晶格位点组成的小有源区域内以多体方式处理em相互作用,但我们的分析仍捕获了观察到的所谓零偏置异常的基本特征[ V. Drewello,J.Schmalhorst,A.Thomas和G.Reiss,物理学。 Rev. B 77,014440(2008)]在基于MgO和AlO_x的逼真的3D MTJ中,其中充电电流的二阶导数d〜2I / dV_b〜2(即非弹性电子隧穿谱)在充电时呈现相反的尖峰。任一侧V_b =0。我们表明,这与em交互作用打开后大幅修改的状态的高密度状态(DOS)密切相关,DOS的非零的大范围带宽变宽,从而使em散射任意小DOS也可能获得峰值(在连续背景的顶部),这表明形成了由电子-空穴对激发云修饰的磁振子的准束缚态。我们还证明,连接到有源区的所有半无限导线中的电子自旋电流之和量化了自旋角动量从有源区带走的自旋角动量的损失。

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