Reconstruction of non-classical cavity field states with snapshots of their decoherence
Samuel Deleglise, Igor Dotsenko, Clement Sayrin, Julien Bernu, Michel, Brune, Jean-Michel Raimond, Serge Haroche

TL;DR
This paper demonstrates the complete quantum state reconstruction of various light states in a cavity, visualizing their decoherence over time through Wigner functions and density matrices.
Contribution
It introduces a method for reconstructing and visualizing non-classical cavity field states, including Schrödinger cat states, and observes their decoherence dynamics.
Findings
Reconstructed coherent, Fock, and Schrödinger cat states in a cavity.
Visualized decoherence process through successive snapshots.
Observed quantum interference features and their decay over time.
Abstract
The state of a microscopic system encodes its complete quantum description, from which the probabilities of all measurement outcomes are inferred. Being a statistical concept, the state cannot be obtained from a single system realization. It can be reconstructed from an ensemble of copies, by performing measurements on different realizations. Reconstructing the state of a set of trapped particles shielded from their environment is an important step for the investigation of the quantum to classical boundary. While trapped atom state reconstructions have been achieved, it is challenging to perform similar experiments with trapped photons which require cavities storing light for very long times. Here, we report the complete reconstruction and pictorial representation of a variety of radiation states trapped in a cavity in which several photons survive long enough to be repeatedly measured.…
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