利用激子的“流动”玻色-爱因斯坦凝聚体制造超大量子寄存器的0D-2D异质结构

Amit Bhunia , Mohit Kumar Singh , Maryam Al Huwayz , Mohamed Henini , Shouvik Datta
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引用次数: 1

摘要

量子点(零维)-量子阱(二维)异质结构中相干“共振”隧穿的存在对于解释宏观大面积上激子偶极子平均电极化的集体振荡是必要的。这是使用作为所施加电压偏置的函数的光激发电容来测量的。这种异质结构中的共振隧穿肯定需要量子阱内电荷载流子和相关间接激子的动量空间变窄,这表明激子的“巡回”玻色-爱因斯坦凝聚依赖于偏压。对负量子电容的周期性变化的观察表明,间接偶极激子的长程空间有序介导了面内库仑关联。即使在白光下,激子偏振波的量子干涉拍的增强对比度和在宏观大面积上观察到的拉比振荡也支持具有长程序的密度驱动激子凝聚的存在。光电容光谱中激子峰分裂的周期性存在(不存在)甚至表明,在施加偏压的情况下,量子阱和量子点的能级之间存在集体耦合(去耦),这可能用于量子门操作。所有这些观察结果都指向了对这种量子点-量子阱异质结构中激子的双组分玻色-爱因斯坦凝聚态的宏观大量子态的实验控制。因此,原则上,通过控制局部电场以及改变重叠光斑的光激发强度,可以将数百万个二能级激子量子位交织在一起,使用这种混合异质结构来制造大型量子寄存器。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

0D-2D heterostructure for making very large quantum registers using ‘itinerant’ Bose-Einstein condensate of excitons

0D-2D heterostructure for making very large quantum registers using ‘itinerant’ Bose-Einstein condensate of excitons

Presence of coherent ‘resonant’ tunneling in quantum dot (zero-dimensional) - quantum well (two-dimensional) heterostructure is necessary to explain the collective oscillations of average electrical polarization of excitonic dipoles over a macroscopically large area. This was measured using photo excited capacitance as a function of applied voltage bias. Resonant tunneling in this heterostructure definitely requires momentum space narrowing of charge carriers inside the quantum well and that of associated indirect excitons, which indicates bias dependent ‘itinerant’ Bose-Einstein condensation of excitons. Observation of periodic variations in negative quantum capacitance points to in-plane coulomb correlations mediated by long range spatial ordering of indirect, dipolar excitons. Enhanced contrast of quantum interference beats of excitonic polarization waves even under white light and observed Rabi oscillations over a macroscopically large area also support the presence of density driven excitonic condensation having long range order. Periodic presence (absence) of splitting of excitonic peaks in photocapacitance spectra even demonstrate collective coupling (decoupling) between energy levels of the quantum well and quantum dots with applied biases, which can potentially be used for quantum gate operations. All these observations point to experimental control of macroscopically large, quantum state of a two-component Bose-Einstein condensate of excitons in this quantum dot - quantum well heterostructure. Therefore, in principle, millions of two-level excitonic qubits can be intertwined to fabricate large quantum registers using such hybrid heterostructure by controlling the local electric fields and also by varying photoexcitation intensities of overlapping light spots.

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