论文标题
控制模式的方向和悬浮腔光学的频率
Controlling mode orientations and frequencies in levitated cavity optomechanics
论文作者
论文摘要
腔光力学提供小型机械振荡器的量子冷却,量子控制和测量。但是,基础量子控制的光学反应可以显着干扰振荡器模式:机械频率通过光弹簧效应和在强耦合方案中的光弹性杂交而移动;机械模式通过腔模式相互杂交。这在悬浮的光力学领域更为相关,其中光学捕获完全决定了机械模式及其频率。在这里,使用允许悬浮的纳米颗粒的量子基态冷却的相干散布(CS)设置,我们表明,当捕获腔体静脉波的节点时,CS场会反对光学弹簧移位和机械模式杂交。在最佳取消点,与大多数实验参数无关,我们在实验上证明,可以强烈的腔体冷却并控制{\ em em novered}模式。通过测量$ s_ {xy}(ω)$相关性光谱来量化$ x-y $平面中腔诱导的模式杂交的抑制,除非在取消点它们不相关的取消点,否则该光谱始终是反相关的。这些发现对使用CS设置的定向力传感有影响。
Cavity optomechanics offers quantum cooling, quantum control and measurement of small mechanical oscillators. However the optical backactions that underpin quantum control can significantly disturb the oscillator modes: mechanical frequencies are shifted by the optical spring effect and light-matter hybridisation in strong coupling regimes; mechanical modes hybridise with each other via the cavity mode. This is even more pertinent in the field of levitated optomechanics, where optical trapping fully determines the mechanical modes and their frequencies. Here, using the coherent-scattering (CS) set-up that allowed quantum ground state cooling of a levitated nanoparticle, we show that -- when trapping away from a node of the cavity standing wave -- the CS field opposes optical spring shifts and mechanical mode hybridisation. At an optimal cancellation point, independent of most experimental parameters, we demonstrate experimentally that it is possible to strongly cavity cool and control the {\em unperturbed} modes. Suppression of the cavity-induced mode hybridisation in the $x-y$ plane is quantified by measuring the $S_{xy}(ω)$ correlation spectra which are seen to always be anti-correlated except at the cancellation point where they become uncorrelated. The findings have implications for directional force sensing using CS set-ups.