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Detecting continuous gravitational waves with superfluid 4He

机译:用超流体4He检测连续重力波

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摘要

Direct detection of gravitational waves is opening a new window onto our universe. Here, we study the sensitivity to continuous-wave strain fields of a kg-scale optomechanical system formed by the acoustic motion of superfluid helium-4 parametrically coupled to a superconducting microwave cavity. This narrowband detection scheme can operate at very high Q-factors, while the resonant frequency is tunable through pressurization of the helium in the 0.1–1.5 kHz range. The detector can therefore be tuned to a variety of astrophysical sources and can remain sensitive to a particular source over a long period of time. For thermal noise limited sensitivity, we find that strain fields on the order of are detectable. Measuring such strains is possible by implementing state of the art microwave transducer technology. We show that the proposed system can compete with interferometric detectors and potentially surpass the gravitational strain limits set by them for certain pulsar sources within a few months of integration time.
机译:直接检测引力波为我们的宇宙打开了一个新窗口。在这里,我们研究了由参量耦合到超导微波腔的超流氦4的声运动形成的千克级光机电系统对连续波应变场的敏感性。这种窄带检测方案可以在很高的Q因子下工作,而谐振频率可通过在0.1–1.5 kHz范围内加压氦气来调节。因此,探测器可以调谐到各种天体源,并且可以长时间保持对特定源的敏感。对于热噪声有限的灵敏度,我们发现可以检测到大约应变场。通过实施最新的微波换能器技术,可以测量此类应变。我们表明,所提出的系统可以与干涉式探测器竞争,并且有可能在积分时间的几个月内超过它们为某些脉冲星源设定的重力应变极限。

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