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Magnetic actuation and feedback cooling of a cavity optomechanical torque sensor

机译:腔体光机械扭矩传感器的磁驱动和反馈冷却

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Cavity optomechanics has demonstrated remarkable capabilities, such as measurement and control of mechanical motion at the quantum level. Yet many compelling applications of optomechanics—such as microwave-to-telecom wavelength conversion, quantum memories, materials studies, and sensing applications—require hybrid devices, where the optomechanical system is coupled to a separate, typically condensed matter, system. Here, we demonstrate such a hybrid optomechanical system, in which a mesoscopic ferromagnetic needle is integrated with an optomechanical torsional resonator. Using this system we quantitatively extract the magnetization of the needle, not known a priori, demonstrating the potential of this system for studies of nanomagnetism. Furthermore, we show that we can magnetically dampen its torsional mode from room-temperature to 11.6?K—improving its mechanical response time without sacrificing torque sensitivity. Future extensions will enable studies of high-frequency spin dynamics and broadband wavelength conversion via torque mixing.
机译:腔光力学已经展示出了非凡的功能,例如在量子水平上测量和控制机械运动。然而,光机械的许多引人注目的应用(例如微波到电信的波长转换,量子存储器,材料研究和传感应用)都需要混合设备,其中光机械系统耦合到一个单独的,通常为凝聚态的系统。在这里,我们展示了一种混合光机械系统,其中将介观铁磁针与光机械扭转共振器集成在一起。使用这个系统,我们定量地提取了针的磁化强度,这不是先验的,这证明了该系统在研究纳米磁性方面的潜力。此外,我们证明了可以在室温下将其扭转模式磁阻尼至11.6?K,从而在不牺牲扭矩灵敏度的情况下改善了其机械响应时间。未来的扩展将使人们能够研究通过转矩混合的高频自旋动力学和宽带波长转换。

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