Giant-cavity-based quantum sensors with enhanced performance
- URL: http://arxiv.org/abs/2204.02044v1
- Date: Tue, 5 Apr 2022 08:22:47 GMT
- Title: Giant-cavity-based quantum sensors with enhanced performance
- Authors: Yu Ting Zhu, Rebing Wu, Zhihui Peng, and Shibei Xue
- Abstract summary: We propose a giant-cavity-based quantum sensor for the first time.
Multiple position-dependent couplings can induce an inherent non-reciprocal coupling between the cavities.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Recent progresses have revealed that quantum systems with multiple
position-dependent couplings, e.g., giant atoms, can exhibit some
unconventional phenomena, such as non-exponential decay etc. However, their
potential applications are still open questions. In this paper, we propose a
giant-cavity-based quantum sensor for the first time, whose performance can be
greatly enhanced compared to traditional cavity-based sensors. In our proposal,
two cavities couple to a dissipative reservoir at multiple points while they
couple to a gain reservoir in a single-point way. To detecting a unknown
parameter using this sensor, a waveguide is coupled to one of the cavities
where detecting fields can pass through for homodyne detection. We find that
multiple position-dependent couplings can induce an inherent non-reciprocal
coupling between the cavities, which can enhance the performance of sensors.
Output noise in our scheme can be reduced to the shot noise level, which is
about one order magnitude lower than the results in Ref. [Nature
Communications, 2018, 9, 4320.]. Besides, the signal-to-noise ratio per photon
is also enhanced by about one order of magnitude. These results show that the
multiple-point-coupling structure is beneficial to nowadays quantum devices.
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