论文标题
使用旅行声子在片上分布量子信息
On-chip distribution of quantum information using traveling phonons
论文作者
论文摘要
将量子纠缠在芯片上分配是迈向实现可扩展量子处理器的关键步骤。与其他载体相比,使用传播的声子 - 量化的指导机械波袋 - 作为传输量子状态的培养基,由于其尺寸较小,传播速度较小,因此引起了很大的关注。此外,声子是在芯片上连接异质量子系统的高度有希望的候选者,例如微波和光光子通过光纤长距离传输量子状态。在这里,我们通过实现使用声子分发量子信息的可行性,通过实现两个行进的声子之间的量子纠缠并创建一个时轴编码的传播音响量子量子。机械量子状态是在光力学腔中生成的,然后发射到声音波导中,在该波导中传播约200微米。我们进一步展示了如何使用语音量与光子量子量子线来违反铃铛类型的不平等。
Distributing quantum entanglement on a chip is a crucial step towards realizing scalable quantum processors. Using traveling phonons - quantized guided mechanical wavepackets - as a medium to transmit quantum states is currently gaining significant attention, due to their small size and low propagation speed compared to other carriers, such as electrons or photons. Moreover, phonons are highly promising candidates to connect heterogeneous quantum systems on a chip, such as microwave and optical photons for long-distance transmission of quantum states via optical fibers. Here, we experimentally demonstrate the feasibility of distributing quantum information using phonons, by realizing quantum entanglement between two traveling phonons and creating a time-bin encoded traveling phononic qubit. The mechanical quantum state is generated in an optomechanical cavity and then launched into a phononic waveguide in which it propagates for around two hundred micrometers. We further show how the phononic, together with a photonic qubit, can be used to violate a Bell-type inequality.