Department of Physics and Oregon Center for Optics, University of Oregon, Eugene, OR 97403, USA.
Science. 2012 Dec 21;338(6114):1609-13. doi: 10.1126/science.1228370. Epub 2012 Nov 15.
Thermal mechanical motion hinders the use of a mechanical system in applications such as quantum information processing. Whereas the thermal motion can be overcome by cooling a mechanical oscillator to its motional ground state, an alternative approach is to exploit the use of a mechanically dark mode that can protect the system from mechanical dissipation. We have realized such a dark mode by coupling two optical modes in a silica resonator to one of its mechanical breathing modes in the regime of weak optomechanical coupling. The dark mode, which is a superposition of the two optical modes and is decoupled from the mechanical oscillator, can still mediate an effective optomechanical coupling between the two optical modes. We show that the formation of the dark mode enables the transfer of optical fields between the two optical modes. Optomechanical dark mode opens the possibility of using mechanically mediated coupling in quantum applications without cooling the mechanical oscillator to its motional ground state.
热机械运动阻碍了机械系统在量子信息处理等应用中的使用。虽然可以通过将机械振荡器冷却到其运动基态来克服热运动,但另一种方法是利用可以保护系统免受机械耗散的机械暗模式。我们通过将两个光学模式耦合到二氧化硅谐振器中的一个机械呼吸模式中,在弱光机械耦合的情况下实现了这种暗模式。暗模式是两个光学模式的叠加,与机械振荡器解耦,仍然可以在两个光学模式之间介导有效的光机械耦合。我们表明,暗模式的形成使得光学场在两个光学模式之间的转移成为可能。光机械暗模式为在不将机械振荡器冷却到其运动基态的情况下在量子应用中使用机械介导的耦合开辟了可能性。