Back-Action Evading Measurement in Gravitational Wave Detectors to
Overcome Standard Quantum Limit, Using Negative Radiation Pressure
- URL: http://arxiv.org/abs/2301.09974v2
- Date: Fri, 15 Sep 2023 17:01:54 GMT
- Title: Back-Action Evading Measurement in Gravitational Wave Detectors to
Overcome Standard Quantum Limit, Using Negative Radiation Pressure
- Authors: Souvik Agasti, Abhishek Shukla, Milos Nesladek
- Abstract summary: We propose a novel scheme to obtain quantum back action evading measurements performed on an opto-mechanical cavity.
The setup has been able to squeeze the output noise below the standard quantum limit, with more efficiency.
- Score: 0.0
- License: http://creativecommons.org/licenses/by/4.0/
- Abstract: Aiming at application for gravitational wave (GW) detection, we propose a
novel scheme how to obtain quantum back action evading measurements performed
on an opto-mechanical cavity, by introducing a negative radiation pressure
coupling between the cavity field and the end mirror. The scheme consists of
introducing a double cavity with end mirrors interlocked by a pivot and moving
in opposite directions. The measurement is performed by sending a two-mode
squeezed vacuum to both cavities and detecting the output through the
heterodyne detection. Compared to the previously proposed hybrid negative mass
spin-optomechanical system in Phys. Rev. Lett. 121, 031101 (2018), we see that
our scheme is capable to suppress back action noise by nearly two orders of
magnitude more in the lower frequency region. Overall, the setup has been able
to squeeze the output noise below the standard quantum limit, with more
efficiency. In addition, the scheme has also proven to be beneficial for
reducing thermal noise by a significant amount. We confirm our result by a
numerical analysis and compared it with the previous proposal Phys. Rev. Lett.
121, 031101 (2018).
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