Gorodetsky M L, Schliesser A, Anetsberger G, Deleglise S, Kippenberg T J
Ecole Polytechnique Fédérale de Lausanne, EPFL, 1015 Lausanne, Switzerland.
Opt Express. 2010 Oct 25;18(22):23236-46. doi: 10.1364/OE.18.023236.
The strength of optomechanical interactions in a cavity optomechanical system can be quantified by a vacuum coupling rate g0 analogous to cavity quantum electrodynamics. This single figure of merit removes the ambiguity in the frequently quoted coupling parameter defining the frequency shift for a given mechanical displacement, and the effective mass of the mechanical mode. Here we demonstrate and verify a straightforward experimental technique to derive the vacuum optomechanical coupling rate. It only requires applying a known frequency modulation of the employed electromagnetic probe field and knowledge of the mechanical oscillator's occupation. The method is experimentally verified for a micromechanical mode in a toroidal whispering-gallery-resonator and a nanomechanical oscillator coupled to a toroidal cavity via its near field.
腔光机械系统中光机械相互作用的强度可以通过类似于腔量子电动力学的真空耦合率(g_0)来量化。这个单一的品质因数消除了在频繁引用的耦合参数中定义给定机械位移的频移和机械模式的有效质量时的模糊性。在这里,我们展示并验证了一种直接的实验技术来推导真空光机械耦合率。它只需要对所使用的电磁探测场施加已知的频率调制,并了解机械振荡器的占据情况。该方法已在环形回音壁谐振器中的微机械模式和通过其近场耦合到环形腔的纳米机械振荡器上进行了实验验证。