Enhanced phase estimation in parity detection based Mach-Zehnder interferometer using non-Gaussian two-mode squeezed thermal input state
Chandan Kumar, Rishabh, and Shikhar Arora

TL;DR
This paper investigates how non-Gaussian operations on two-mode squeezed thermal states can improve phase estimation in Mach-Zehnder interferometry, providing new theoretical tools and identifying optimal operations considering success probabilities.
Contribution
It derives the Wigner function for non-Gaussian TMST states and demonstrates their enhanced phase sensitivity, highlighting the advantages over TMSV states and identifying optimal non-Gaussian operations.
Findings
Non-Gaussian operations improve phase sensitivity for TMST states.
Photon catalysis with high transmissivity is optimal considering success probability.
Enhanced phase estimation potential for future quantum metrology experiments.
Abstract
While the quantum metrological advantages of performing non-Gaussian operations on two-mode squeezed vacuum (TMSV) states have been extensively explored, similar studies in the context of two-mode squeezed thermal (TMST) states are severely lacking. In this paper, we explore the potential advantages of performing non-Gaussian operations on TMST state for phase estimation using parity detection based Mach-Zehnder interferometry. To this end, we consider the realistic model of photon subtraction, addition, and catalysis. We first provide a derivation of the unified Wigner function of the photon subtracted, photon added and photon catalyzed TMST state, which to the best of our knowledge is not available in the existing literature. This Wigner function is then used to obtain the expression for the phase sensitivity. Our results show that performing non-Gaussian operations on TMST states can…
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Taxonomy
TopicsQuantum Information and Cryptography · Quantum optics and atomic interactions · Mechanical and Optical Resonators
