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Geometric reduction of dynamical nonlocality in nanoscale quantum circuits

机译:纳米级量子电路中动态非局部性的几何还原

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摘要

Nonlocality is a key feature discriminating quantum and classical physics. Quantum-interference phenomena, such as Young’s double slit experiment, are one of the clearest manifestations of nonlocality, recently addressed as dynamical to specify its origin in the quantum equations of motion. It is well known that loss of dynamical nonlocality can occur due to (partial) collapse of the wavefunction due to a measurement, such as which-path detection. However, alternative mechanisms affecting dynamical nonlocality have hardly been considered, although of crucial importance in many schemes for quantum information processing. Here, we present a fundamentally different pathway of losing dynamical nonlocality, demonstrating that the detailed geometry of the detection scheme is crucial to preserve nonlocality. By means of a solid-state quantum-interference experiment we quantify this effect in a diffusive system. We show that interference is not only affected by decoherence, but also by a loss of dynamical nonlocality based on a local reduction of the number of quantum conduction channels of the interferometer. With our measurements and theoretical model we demonstrate that this mechanism is an intrinsic property of quantum dynamics. Understanding the geometrical constraints protecting nonlocality is crucial when designing quantum networks for quantum information processing.
机译:非局域性是区分量子物理学和经典物理学的关键特征。诸如Young的双狭缝实验之类的量子干扰现象是非局域性最明显的表现形式之一,最近被称为动力学,以在运动量子方程中确定其起源。众所周知,由于诸如路径检测之类的测量导致的波函数的(部分)崩溃,会导致动态非局部性的损失。然而,尽管在许多量子信息处理方案中至关重要,但几乎没有考虑过影响动态非局域性的替代机制。在这里,我们提出了一种从根本上不同的途径来失去动态的非本地性,这表明检测方案的详细几何结构对于保留非本地性至关重要。通过固态量子干扰实验,我们可以量化扩散系统中的这种效应。我们表明,干涉不仅受退相干的影响,而且受基于干涉仪的量子传导通道数量局部减少的动态非局部性的影响。通过我们的测量和理论模型,我们证明了这种机制是量子动力学的内在特性。在设计用于量子信息处理的量子网络时,了解保护非局部性的几何约束至关重要。

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