论文标题

使用绝热通道的远程纠缠使用可调的量子通信系统

Remote entanglement via adiabatic passage using a tunably-dissipative quantum communication system

论文作者

Chang, Hung-Shen, Zhong, Youpeng, Bienfait, Audrey, Chou, Ming-Han, Conner, Christopher R., Dumur, Étienne, Grebel, Joel, Peairs, Gregory A., Povey, Rhys G., Satzinger, Kevin J., Cleland, Andrew N.

论文摘要

远程量子节点之间的有效量子通信需要高保真量子状态转移和远程纠缠产生。最近的实验表明,微波光子以及声子可以用来对超导Qubits进行耦合,而忠诚度则主要受通信通道中的损失限制。绝热协议可以通过传输量子状态而无需填充有损通信渠道来克服渠道损失。在这里,我们提出了一个独特的超导量子通信系统,其中包括两个由0.73 m长的通信通道连接的超导码头。值得注意的是,我们可以向通道引入大型可调损失,从而在耗散存在下探索不同的纠缠方案。 When set for minimum loss in the channel, we demonstrate an adiabatic quantum state transfer protocol that achieves 99% transfer efficiency as well as the deterministic generation of entangled Bell states with a fidelity of 96%, all without populating the intervening communication channel, and competitive with a qubit-resonant mode-qubit relay method.我们还探讨了在存在重大通道丢失的情况下绝热方案的性能,并表明绝热协议可以防止渠道中的损失,与继电器方法相比,获得更高的状态转移和纠缠忠诚度。

Effective quantum communication between remote quantum nodes requires high fidelity quantum state transfer and remote entanglement generation. Recent experiments have demonstrated that microwave photons, as well as phonons, can be used to couple superconducting qubits, with a fidelity limited primarily by loss in the communication channel. Adiabatic protocols can overcome channel loss by transferring quantum states without populating the lossy communication channel. Here we present a unique superconducting quantum communication system, comprising two superconducting qubits connected by a 0.73 m-long communication channel. Significantly, we can introduce large tunable loss to the channel, allowing exploration of different entanglement protocols in the presence of dissipation. When set for minimum loss in the channel, we demonstrate an adiabatic quantum state transfer protocol that achieves 99% transfer efficiency as well as the deterministic generation of entangled Bell states with a fidelity of 96%, all without populating the intervening communication channel, and competitive with a qubit-resonant mode-qubit relay method. We also explore the performance of the adiabatic protocol in the presence of significant channel loss, and show that the adiabatic protocol protects against loss in the channel, achieving higher state transfer and entanglement fidelities than the relay method.

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