论文标题

纵向和横向电场操作一维通道中孔自旋尺吨位的操纵

Longitudinal and transverse electric field manipulation of hole spin-orbit qubits in one-dimensional channels

论文作者

Michal, Vincent P., Venitucci, Benjamin, Niquet, Yann-Michel

论文摘要

限制在半导体纳米结构中的孔认识到量子机械自旋与量子轨道角动量将量子强烈混合在一起。显着的自旋轨道耦合允许快速对此类量子的所有电气操作。我们研究了CMOS设备的理想化,该设备在一个方向(薄膜几何形状)上强烈局限,同时允许孔沿一维通道更广泛地移动。沿通道安排的金属门应用了静态电动偏置和$ AC $电动驾驶。在基于具有批量反转对称性的材料(例如硅或锗)的量子设备中,存在基于旋转轨道耦合的不同可能的量子操作机制。其中之一,$ g $ tensor磁共振($ g $ -TMR)依赖于有效的$ g $ - $ factors对电气限制的依赖。在这种配置中,孔由平行于静态电场的$ AC $场驱动,并垂直于通道(横向驾驶)。我们在这里将另一种机制称为Iso-Zeeman电偶极旋转共振(IZ-EDSR),是由于Rashba自旋轨道耦合导致沿量子通道(longududinal驱动器)振荡的有效时间与时间相关的磁场。我们比较了这两种操作模式,并描述了Rabi频率最大的幅度最大的条件。可以通过电气调整来实现不同的机制,在该耦合到$ ac $电场的耦合变得薄弱或强大...

Holes confined in semiconductor nanostructures realize qubits where the quantum mechanical spin is strongly mixed with the quantum orbital angular momentum. The remarkable spin-orbit coupling allows for fast all electrical manipulation of such qubits. We study an idealization of a CMOS device where the hole is strongly confined in one direction (thin film geometry), while it is allowed to move more extensively along a one-dimensional channel. Static electric bias and $ac$ electrical driving are applied by metallic gates arranged along the channel. In quantum devices based on materials with a bulk inversion symmetry, such as silicon or germanium, there exists different possible spin-orbit coupling based mechanisms for qubit manipulation. One of them, the $g$-tensor magnetic resonance ($g$-TMR), relies on the dependence of the effective $g$-factors on the electrical confinement. In this configuration the hole is driven by an $ac$ field parallel to the static electric field and perpendicular to the channel (transverse driving). Another mechanism, which we refer to here as iso-Zeeman electric dipole spin resonance (IZ-EDSR), is due to the Rashba spin-orbit coupling that leads to an effective time-dependent magnetic field experienced by the pseudo-spin oscillating along the quantum channel (longitudinal driving). We compare these two modes of operation and we describe the conditions where the magnitudes of the Rabi frequencies are the largest. Different regimes can be attained by electrical tuning where the coupling to the $ac$ electric field is made either weak or strong...

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