论文标题

Floquet增强的旋转互换

Floquet-Enhanced Spin Swaps

论文作者

Qiao, Haifeng, Kandel, Yadav P., Van Dyke, John S., Fallahi, Saeed, Gardner, Geoffrey C., Manfra, Michael J., Barnes, Edwin, Nichol, John M.

论文摘要

量子系统之间的信息传输对于量子通信和计算至关重要。在量子计算机中,量子位之间的高连通性可以提高算法的效率,有助于纠正误差并实现高保真读数。但是,与所有量子门一样,在量子位之间传输信息的操作可能会遭受与Qubits互动和Qubits之间的混乱相关的错误。在这里,我们利用量子位之间的相互作用和混乱,以改善半导体栅极定义的量子点旋转中自旋特征状态的掉期操作。我们使用四个电子旋转的系统,我们将其配置为两个交换耦合的单线量子盘。我们的方法依赖于离散时间晶体的物理学,它可以提高自旋 - 元素差的质量因素,最多可达到数量级。我们的结果表明,多头系统中的相互作用和混乱如何稳定非平凡的量子操作,并提出在量子信息处理应用中,例如时间晶体(如时间晶体)的非平衡量子现象的潜在用途。我们的结果还证实了长期以来可预测的交换耦合单线量子量之间的有效iSing相互作用的出现。

The transfer of information between quantum systems is essential for quantum communication and computation. In quantum computers, high connectivity between qubits can improve the efficiency of algorithms, assist in error correction, and enable high-fidelity readout. However, as with all quantum gates, operations to transfer information between qubits can suffer from errors associated with spurious interactions and disorder between qubits, among other things. Here, we harness interactions and disorder between qubits to improve a swap operation for spin eigenstates in semiconductor gate-defined quantum-dot spins. We use a system of four electron spins, which we configure as two exchange-coupled singlet-triplet qubits. Our approach, which relies on the physics underlying discrete time crystals, enhances the quality factor of spin-eigenstate swaps by up to an order of magnitude. Our results show how interactions and disorder in multi-qubit systems can stabilize non-trivial quantum operations and suggest potential uses for non-equilibrium quantum phenomena, like time crystals, in quantum information processing applications. Our results also confirm the long-predicted emergence of effective Ising interactions between exchange-coupled singlet-triplet qubits.

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