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Optical switching of nuclear spin–spin couplings in semiconductors

机译:半导体中核自旋-自旋耦合的光开关

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摘要

Two-qubit operation is an essential part of quantum computation. However, solid-state nuclear magnetic resonance quantum computing has not been able to fully implement this functionality, because it requires a switchable inter-qubit coupling that controls the time evolutions of entanglements. Nuclear dipolar coupling is beneficial in that it is present whenever nuclear–spin qubits are close to each other, while it complicates two-qubit operation because the qubits must remain decoupled to prevent unwanted couplings. Here we introduce optically controllable internuclear coupling in semiconductors. The coupling strength can be adjusted externally through light power and even allows on/off switching. This feature provides a simple way of switching inter-qubit couplings in semiconductor-based quantum computers. In addition, its long reach compared with nuclear dipolar couplings allows a variety of options for arranging qubits, as they need not be next to each other to secure couplings.
机译:二量子位运算是量子计算的重要组成部分。但是,固态核磁共振量子计算无法完全实现此功能,因为它需要控制纠缠时间演化的可切换量子位间耦合。核偶极耦合的好处在于,每当核自旋量子位彼此靠近时就会出现,而核双极耦合会使两个量子位的操作复杂化,因为量子位必须保持解耦以防止不必要的耦合。在这里,我们介绍半导体中的光可控核内耦合。可以通过光功率从外部调节耦合强度,甚至可以进行开/关切换。此功能提供了一种在基于半导体的量子计算机中切换量子比特间耦合的简单方法。此外,与核偶极耦合相比,它的作用范围更广,因此可以为排列量子位提供多种选择,因为它们不需要彼此相邻即可固定耦合。

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