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On-chip coherent microwave-to-optical transduction mediated by ytterbium in YVO4

机译:镱在YVO4介导的片上相干微波对光学转导

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Optical networks that distribute entanglement among various quantum systems will form a powerful framework for quantum science but are yet to interface with leading quantum hardware such as superconducting qubits. Consequently, these systems remain isolated because microwave links at room temperature are noisy and lossy. Building long distance connectivity requires interfaces that map quantum information between microwave and optical fields. While preliminary microwave-to-optical transducers have been realized, developing efficient, low-noise devices that match superconducting qubit frequencies (gigahertz) and bandwidths (10 kilohertz - 1 megahertz) remains a challenge. Here we demonstrate a proof-of-concept on-chip transducer using trivalent ytterbium-171 ions in yttrium orthovanadate coupled to a nanophotonic waveguide and a microwave transmission line. The device's miniaturization, material, and zero-magnetic-field operation are important advances for rare-earth ion magneto-optical devices. Further integration with high quality factor microwave and optical resonators will enable efficient transduction and create opportunities toward multi-platform quantum networks.
机译:在各种量子系统之间分配纠缠的光网络将为量子科学的强大框架,但尚未与超导Qubits等领先的量子硬件接口。因此,这些系统保持孤立,因为室温下的微波链路是嘈杂和有损的。构建长距离连接需要映射微波和光场之间的量子信息的接口。虽然已经实现了初步微波到光学传感器,但显影符合超导Qubbit频率(Gigahertz)和带宽(10千赫 - 1 Megahertz)符合挑战的高效低噪声器件。在这里,我们展示了使用三价钇-171离子在钇逆转录的钇钇和微波传输线上的卷积镱-171离子的概念上的片上传感器。该器件的小型化,材料和零磁场操作是稀土离子磁光器件的重要进步。与高质量因子微波和光学谐振器的进一步集成将实现有效的转换并为多平台量子网络创造机会。

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