论文标题

Spintronics符合密度矩阵重归其化组:量子自旋扭矩驱动的非经典磁化反转和远程纠缠的动态堆积

Spintronics meets density matrix renormalization group: Quantum spin torque driven nonclassical magnetization reversal and dynamical buildup of long-range entanglement

论文作者

Petrović, Marko D., Mondal, Priyanka, Feiguin, Adrian E., Plecháč, Petr, Nikolić, Branislav K.

论文摘要

我们引入了时间依赖性密度矩阵重归化基团(TDMRG),以解决旋转型的长期问题 - 如何在传导电子的流动旋转和磁性材料内的局部旋转之间进行旋转转移扭矩(STT),通过完全量子力学的机械机械机械机械机械机械机械机械机械机械的动力学来处理磁性材料。与常规的slonczewski-berger Stt相反,在该局部旋转被视为遵守Landau-lifshitz-gilbert方程式的经典媒介,并且仅在流动电子和局部旋转的旋转时才启动其STT驱动的动力学,而当这些局部旋转是非collinearearearearearearearearearearearearearearearearearear collinum colline colleine countor countor colleine budear budear。 Using tDMRG, we simulate the time evolution of a many-body quantum state of electrons and localized spins, where the former are injected as a spin-polarized current pulse while the latter comprise a quantum Heisenberg ferromagnetic metallic (FM) spin-$\frac{1}{2}$ XXZ chain initially in the ground state with spin-polarization antiparallel to that of injected电子。量子STT逆转局部自旋的方向,但是当注射电子的数量超过局部自旋数时,没有初始方向旋转。 LLG动力学中没有这种非古老逆转,在FM链中显然是不均匀的,并且可以伴随着与局部自旋相关的磁化降低,甚至在特定位置为零。这是因为量子STT产生了所有流动和局部旋转的高度纠缠的非平衡多体状态,尽管从最初的平凡FM的未进入的基态开始。此外,即使在无限分离处,在FM边缘处的局部旋转之间的相互信息仍然是非零的,这是远程纠缠的动态堆积的标志。

We introduce time-dependent density matrix renormalization group (tDMRG) as a solution to long standing problem in spintronics -- how to describe spin-transfer torque (STT) between flowing spins of conduction electrons and localized spins within a magnetic material by treating the dynamics of both spin species fully quantum-mechanically. In contrast to conventional Slonczewski-Berger STT, where the localized spins are viewed as classical vectors obeying the Landau-Lifshitz-Gilbert equation and where their STT-driven dynamics is initiated only when the spin-polarization of flowing electrons and localized spins are noncollinear, quantum STT can occur when these vectors are collinear but antiparallel. Using tDMRG, we simulate the time evolution of a many-body quantum state of electrons and localized spins, where the former are injected as a spin-polarized current pulse while the latter comprise a quantum Heisenberg ferromagnetic metallic (FM) spin-$\frac{1}{2}$ XXZ chain initially in the ground state with spin-polarization antiparallel to that of injected electrons. The quantum STT reverses the direction of localized spins, but without rotation from the initial orientation, when the number of injected electrons exceeds the number of localized spins. Such nonclassical reversal, which is absent from LLG dynamics, is strikingly inhomogeneous across the FM chain and it can be accompanied by reduction of the magnetization associated with localized spins, even to zero at specific locations. This is because quantum STT generates a highly entangled nonequilibrium many-body state of all flowing and localized spins, despite starting from the initially unentangled ground state of a mundane FM. Furthermore, the mutual information between localized spins at the FM edges remains nonzero even at infinite separation as the signature of dynamical buildup of long-range entanglement.

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