Role of anisotropic confining potential and elliptical driving in dynamics of a Ge hole qubit.

IF 2.6 4区 物理与天体物理 Q3 PHYSICS, CONDENSED MATTER Journal of Physics: Condensed Matter Pub Date : 2025-03-04 DOI:10.1088/1361-648X/adb927
Bashab Dey, John Schliemann
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Abstract

The squeezing of a Ge planar quantum dot enhances the Rabi frequency of electric dipole spin resonance by several orders of magnitude due to a strong Direct Rashba spin-orbit interaction in such geometries (Boscoet al2021Phys. Rev.B104115425). We investigate the geometric effect of an elliptical (squeezed) confinement and its interplay with the polarization of driving field in determining the Rabi frequency of a heavy-hole qubit in a planar Ge quantum dot. To calculate the Rabi frequency, we consider only thep-linear SOIs viz. electron-like Rashba, hole-like Rashba and hole-like Dresselhaus which are claimed to be the dominant ones by recent studies on planar Ge heterostructures. We derive approximate analytical expressions of the Rabi frequency using a Schrieffer-Wolff transformation for small SOI and driving strengths. Firstly, for an out-of-plane magnetic field with magnitudeB, we get an operating region with respect toB, squeezing and polarization parameters where the qubit can be operated to obtain 'clean' Rabi flips. On and close to the boundaries of the region, the higher orbital levels strongly interfere with the two-level qubit subspace and destroy the Rabi oscillations, thereby putting a limitation on squeezing of the confinement. The Rabi frequency shows different behaviour for electron-like and hole-like Rashba SOIs. It vanishes for right (left) circular polarization in presence of purely electron-like (hole-like) Rashba SOI in a circular confinement. For both in- and out-of-plane magnetic fields, higher Rabi frequencies are achieved for squeezed configurations when the ellipses of polarization and the confinement equipotential have their major axes aligned but with different eccentricities. We also deduce a simple formula to calculate the effective heavy hole mass by measuring the Rabi frequencies using this setup.

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各向异性约束势和椭圆驱动在Ge空穴量子比特动力学中的作用。
Ge平面量子点的压缩将电偶极子自旋共振的拉比频率提高了几个数量级,这是由于在这种几何形状中存在强烈的直接Rashba自旋-轨道相互作用(DR- ;SOI)。[j].中国生物医学工程学报,2016,32(5):1161 - 1161。我们研究了椭圆(压缩)约束的几何效应 ;及其与驱动场偏振的相互作用 ;确定了平面Ge量子点中重孔量子比特的Rabi频率。为了计算Rabi频率,我们只考虑p-线性SOIs,即类电子Rashba,类空穴Rashba ;和类空穴Dresselhaus,这些是最近在平面 ;Ge异质结构研究中被认为是主导的SOIs。我们利用a ;Schrieffer-Wolff变换,导出了小SOI和驱动强度下Rabi频率的近似解析表达式。首先,对于一个大小为B的面外磁场,我们得到了一个相对于B的工作区域,压缩和偏振参数,在这个区域中,量子比特可以被操作以获得“干净”的拉比翻转。在和 ;靠近区域边界的地方,较高的轨道能级强烈地干扰两能级 ;量子位子空间并破坏拉比振荡,从而限制了 ;约束的压缩。类电子和类空穴Rashba ;SOIs的Rabi频率表现出不同的行为。在圆约束中,当纯类电子(类空穴)Rashba SOI存在时,它在右(左)圆偏振中消失。对于面内和面外磁场,当极化椭圆和约束等势长轴对齐但偏心率不同时,压缩构型的 ;Rabi频率更高。我们还推导出了一个简单的公式,通过测量拉比频率来计算有效的重孔质量。
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来源期刊
Journal of Physics: Condensed Matter
Journal of Physics: Condensed Matter 物理-物理:凝聚态物理
CiteScore
5.30
自引率
7.40%
发文量
1288
审稿时长
2.1 months
期刊介绍: Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.
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