Meng Jia-Wei, Tang Shui-Jing, Sun Jialve, Shen Ke, Li Changhui, Gong Qihuang, Xiao Yun-Feng
Frontiers Science Center for Nano-optoelectronics and State Key Laboratory for Mesoscopic Physics, School of Physics, Peking University, Beijing 100871, China.
Collaborative Innovation Center of Extreme Optics, Shanxi University, Taiyuan 030006, China.
Phys Rev Lett. 2022 Aug 12;129(7):073901. doi: 10.1103/PhysRevLett.129.073901.
We propose and demonstrate experimentally the strong dissipative acousto-optic interaction between a suspended vibrating microfiber and a whispering-gallery microcavity. On the one hand, the dissipative response driven by an external stimulus of acoustic waves is found to be stronger than the dispersive response by 2 orders of magnitude. On the other hand, dead points emerge with the zero dissipative response at certain parameters, promising the potentials in physical sensing such as precise measurements of magnetic field and temperature. The strong dissipative acousto-optic interaction is then explored for ultrasensitive detection of broadband acoustic waves. A noise equivalent pressure as low as 0.81 Pa at 140 kHz in air is demonstrated experimentally, insensitive to cavity Q factors and does not rely on mechanical resonances.
我们提出并通过实验证明了悬浮振动微纤维与回音壁微腔之间存在强耗散声光相互作用。一方面,发现由声波外部刺激驱动的耗散响应比色散响应强2个数量级。另一方面,在某些参数下会出现具有零耗散响应的死点,这为物理传感(如磁场和温度的精确测量)带来了潜力。然后,研究了强耗散声光相互作用用于宽带声波的超灵敏检测。实验证明,在空气中140kHz时的等效噪声压力低至0.81Pa,对腔Q因子不敏感且不依赖于机械共振。