ARC Centre of Excellence for Engineered Quantum Systems, University of Western Australia, 35 Stirling Highway, Crawley WA 6009, Australia.
Phys Rev Lett. 2013 Aug 23;111(8):085502. doi: 10.1103/PhysRevLett.111.085502. Epub 2013 Aug 20.
The confinement of high frequency phonons approaching 1 GHz is demonstrated in phonon-trapping acoustic cavities at cryogenic temperatures using a low-coupled network approach. The frequency range is extended by nearly an order of magnitude, with excitation at greater than the 200th overtone achieved for the first time. Such a high frequency operation reveals Rayleigh-type phonon scattering losses due to highly diluted lattice impurities and corresponding glasslike behavior, with a maximum Q(L)×f product of 8.6×10(17) at 3.8 K and 4×10(17) at 15 mK. This suggests a limit on the Q×f product due to unavoidable crystal disorder. Operation at 15 mK is high enough in frequency that the average phonon occupation number is less than unity, with a loaded quality factor above half a billion. This work represents significant progress towards the utilization of such acoustic cavities for hybrid quantum systems.
利用低温下的低耦合网络方法,在声陷阱式声子空腔中实现了近 1GHz 高频声子的限制。通过这种方法,频率范围扩展了近一个数量级,首次实现了超过 200 次泛频的激励。这种高频操作由于晶格杂质高度稀释和相应的玻璃状行为而导致出现瑞利型声子散射损耗,在 3.8K 时最大 Q(L)×f 乘积为 8.6×10(17),在 15mK 时为 4×10(17)。这表明由于不可避免的晶体无序,Q×f 乘积存在一个限制。在 15mK 的频率下工作足够高,使得平均声子占据数小于 1,加载的品质因数超过 5 亿。这项工作是朝着利用这种声学腔实现混合量子系统的方向迈出的重要一步。