论文标题

量子旅行的布里鲁因谐振器的提案

Proposal for a quantum traveling Brillouin resonator

论文作者

Harris, Glen I., Sawadsky, Andreas, Sfendla, Yasmine L., Wasserman, Walter W., Bowen, Warwick P., Baker, Christopher G.

论文摘要

在量子制度中运行的布里鲁因系统最近被确定为量子信息技术和基本科学的宝贵工具。然而,由于将低热占用占用与低光学和机械耗散以及大型相干声子 - photon相互作用相结合的严格要求,达到量子状态非常具有挑战性。在这里,我们提出了一个基于芯片液体的布里鲁因系统,该系统预计会表现出超高相干的声子 - 光子耦合,并具有异常低的声学耗散。该系统由一个基于硅的“插槽”波导组成,充满了超富氦的氦气。这种类型的波导支持光学和声学流动波,将两个场都限制在次波长尺度模式体积中。它是芯片巡回波浪谐音谐振器的基础,其单光机电耦合速率超过$ 240 $ kHz。此类设备可以实现从超敏感的超丝陀螺仪,到非转录光学电路的应用。此外,该平台开辟了新的可能性,以探索强烈相互作用的冷凝物中的量子流体动力学。

Brillouin systems operating in the quantum regime have recently been identified as a valuable tool for quantum information technologies and fundamental science. However, reaching the quantum regime is extraordinarily challenging, owing to the stringent requirements of combining low thermal occupation with low optical and mechanical dissipation, and large coherent phonon-photon interactions. Here, we propose an on-chip liquid based Brillouin system that is predicted to exhibit ultra-high coherent phonon-photon coupling with exceptionally low acoustic dissipation. The system is comprised of a silicon-based "slot" waveguide filled with superfluid helium. This type of waveguide supports optical and acoustical traveling waves, strongly confining both fields into a subwavelength-scale mode volume. It serves as the foundation of an on-chip traveling wave Brillouin resonator with a single photon optomechanical coupling rate exceeding $240$kHz. Such devices may enable applications ranging from ultra-sensitive superfluid-based gyroscopes, to non-reciprocal optical circuits. Furthermore, this platform opens up new possibilities to explore quantum fluid dynamics in a strongly interacting condensate.

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