Room-temperature optomechanical squeezing

被引:0
|
作者
Nancy Aggarwal
Torrey J. Cullen
Jonathan Cripe
Garrett D. Cole
Robert Lanza
Adam Libson
David Follman
Paula Heu
Thomas Corbitt
Nergis Mavalvala
机构
[1] LIGO – Massachusetts Institute of Technology,Department of Physics
[2] Louisiana State University,undefined
[3] Crystalline Mirror Solutions,undefined
[4] Northwestern University,undefined
[5] Thorlabs Crystalline Solutions,undefined
来源
Nature Physics | 2020年 / 16卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Squeezed light—light with quantum noise lower than shot noise in some quadratures and higher in others—can be used to improve the sensitivity of precision measurements. In particular, squeezed light sources based on nonlinear optical crystals are being used to improve the sensitivity of gravitational wave detectors. In optomechanical squeezers, the radiation-pressure-driven interaction of a coherent light field with a mechanical oscillator induces correlations between the amplitude and phase quadratures of the light, which induce the squeezing. However, thermally driven fluctuations of the mechanical oscillator’s position make it difficult to observe the quantum correlations at room temperature and at low frequencies. Here, we present a measurement of optomechanically squeezed light, performed at room temperature in a broad band near the audio-frequency regions relevant to gravitational wave detectors. We observe sub-Poissonian quantum noise in a frequency band of 30–70 kHz with a maximum reduction of 0.7 ± 0.1 dB below shot noise at 45 kHz. We present two independent methods of measuring this squeezing, one of which does not rely on the calibration of shot noise.
引用
收藏
页码:784 / 788
页数:4
相关论文
共 50 条
  • [1] Room-temperature optomechanical squeezing
    Aggarwal, Nancy
    Cullen, Torrey J.
    Cripe, Jonathan
    Cole, Garrett D.
    Lanza, Robert
    Libson, Adam
    Follman, David
    Heu, Paula
    Corbitt, Thomas
    Mavalvala, Nergis
    [J]. NATURE PHYSICS, 2020, 16 (07) : 784 - +
  • [2] Room-Temperature Fiber Tip Nanoscale Optomechanical Bolometer
    Liu, Shen
    Chen, Yanping
    Lai, Huailei
    Zou, Mengqiang
    Xiao, Hang
    Chen, Peijing
    Du, Bin
    Xiao, Xunzhou
    He, Jun
    Wang, Yiping
    [J]. ACS PHOTONICS, 2022, 9 (05) : 1586 - 1593
  • [3] Quantum correlations from a room-temperature optomechanical cavity
    Purdy, T. P.
    Grutter, K. E.
    Srinivasan, K.
    Taylor, J. M.
    [J]. SCIENCE, 2017, 356 (6344) : 1265 - 1268
  • [4] Room-temperature steady-state optomechanical entanglement on a chip
    Zou, Chang-Ling
    Zou, Xu-Bo
    Sun, Fang-Wen
    Han, Zheng-Fu
    Guo, Guang-Can
    [J]. PHYSICAL REVIEW A, 2011, 84 (03):
  • [5] Room-Temperature Steady-State Entanglement in a Four-Mode Optomechanical System
    Wang, Tao
    Zhang, Rui
    Su, Xue-Mei
    [J]. COMMUNICATIONS IN THEORETICAL PHYSICS, 2016, 65 (05) : 596 - 600
  • [6] Room-Temperature Steady-State Entanglement in a Four-Mode Optomechanical System
    王涛
    张锐
    苏雪梅
    [J]. Communications in Theoretical Physics, 2016, 65 (05) : 596 - 600
  • [7] ROOM-TEMPERATURE
    CRAYTON, MA
    [J]. SCIENCE, 1980, 208 (4444) : 552 - 552
  • [8] Room-temperature nanowires
    Graydon, Oliver
    [J]. NATURE PHOTONICS, 2019, 13 (05) : 303 - 303
  • [9] Room-temperature comb
    Oliver Graydon
    [J]. Nature Photonics, 2019, 13 : 438 - 438
  • [10] ROOM-TEMPERATURE POLYESTERIFICATION
    MOORE, JS
    STUPP, SI
    [J]. MACROMOLECULES, 1990, 23 (01) : 65 - 70