Time-domain field correlation measurements enable tomography of highly multimode quantum states of light
Emanuel Hubenschmid, Guido Burkard

TL;DR
This paper introduces a novel time-domain correlation measurement method for quantum state tomography, enabling the reconstruction of highly multimode Gaussian states and potentially non-Gaussian states with subcycle resolution.
Contribution
The authors propose a new tomography scheme based on time-domain quadrature correlations, extending it to electro-optic sampling, and analyze its effectiveness for highly multimode and non-Gaussian quantum states.
Findings
Reconstructs highly multimode Gaussian states using time-delay correlation data.
Extends tomography to electro-optic sampling with subcycle resolution.
Analyzes thermalisation effects and provides a framework for non-Gaussian state measurement.
Abstract
Recent progress in ultrafast optics facilitates the investigation of the dynamics of highly multimode quantum states of light, as demonstrated by the application of electro-optic sampling to quantum states of the electromagnetic field. Yet, the complete tomographic reconstruction of optical quantum states with prior unknown statistics and dynamics is still challenging, since state-of-the-art tomographic methods require the measurement of many orthogonal, distinguishable modes. Here, we propose a tomography scheme based on time-domain quadrature correlation measurements and theoretically demonstrate its ability to reconstruct highly multimode Gaussian states. In contrast to (eight-port) homodyne detection, the two local oscillator pulses are shorter in time and are (independently) time-delayed against the pulsed quantum state. The distinguishable mode structure is obtained in…
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Taxonomy
TopicsQuantum optics and atomic interactions · Spectroscopy and Quantum Chemical Studies · Terahertz technology and applications
