论文标题

带有声音纳米结构的超流体光学机械学

Superfluid Optomechanics with Phononic Nanostructures

论文作者

Spence, S., Koong, Z. X., Horsley, S. A. R., Rojas, X.

论文摘要

在量子光力学中,寻找限制损失的材料和策略对于该领域的进步至关重要。最近,提出了Superfluid 4HE作为量子光学机械的有前途的机械元素。对于量子光机械系统,该量子流体显示出高度可取的特性(例如,声学损失极低)。在当前的实施中,超流体的光力学系统受到外部损失来源的影响,这破坏了谐振器的质量因素。在这项工作中,我们提出了一个新的实施,利用了纳米流体限制。我们的方法基于在语音纳米结构中形成的声学谐振器,旨在限制辐射损失,以保留超氟4HE的内在特性。在这项工作中,我们估算了光学系统参数。使用最近的理论,我们得出了不同热力学条件下声学谐振器的预期质量因素。我们计算具有数值模拟的语音纳米结构引起的损失来源。我们的结果表明,在广泛的参数中提出的方法的可行性,这为更复杂的几何形状打开了新的前景。

In quantum optomechanics, finding materials and strategies to limit losses has been crucial to the progress of the field. Recently, superfluid 4He was proposed as a promising mechanical element for quantum optomechanics. This quantum fluid shows highly desirable properties (e.g. extremely low acoustic loss) for a quantum optomechanical system. In current implementations, superfluid optomechanical systems suffer from external sources of loss, which spoils the quality factor of resonators. In this work, we propose a new implementation, exploiting nanofluidic confinement. Our approach, based on acoustic resonators formed within phononic nanostructures, aims at limiting radiation losses to preserve the intrinsic properties of superfluid 4He. In this work, we estimate the optomechanical system parameters. Using recent theory, we derive the expected quality factors for acoustic resonators in different thermodynamic conditions. We calculate the sources of loss induced by the phononic nanostructures with numerical simulations. Our results indicate the feasibility of the proposed approach in a broad range of parameters, which opens new prospects for more complex geometries.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源