Spatial, spectral, temporal and polarisation resolved state tomography of light
Martin Pl\"oschner, Marcos Maestre Morote, Daniel Dahl, Mickael, Mounaix, Greta Light, Aleksandar Rakic, Joel Carpenter

TL;DR
This paper introduces a quantum state tomography-based method for comprehensive, non-interferometric characterization of complex optical beams, capturing spatial, spectral, temporal, and polarization information simultaneously.
Contribution
The authors develop a novel technique that retrieves full spatiotemporal and spectral information of light beams without spatial resolution or reference beams, overcoming limitations of existing methods.
Findings
Successfully characterizes complex laser diode output
Resolves multiple incoherent fields within a single beam
Determines spectral and temporal evolution unambiguously
Abstract
The ability to measure polarisation, spectrum, temporal dynamics, and spatial amplitude and phase of optical beams is essential to study fundamental phenomena in laser dynamics, telecommunications and nonlinear optics. Current characterisation techniques only apply in limited contexts. Non-interferometric methods typically lack access to spatial phase, while phase-sensitive approaches necessitate either an auxiliary reference source or an adequate self-reference, neither of which is universally available. Regardless of the reference, deciphering complex wavefronts of multiple co-propagating incoherent fields remains particularly challenging. Here, we harness the principles of quantum state tomography to circumvent these limitations. A full description of an unknown beam is retrieved by measuring its temporally and spectrally resolved density matrices for both polarisations, using a…
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Taxonomy
TopicsLaser-Matter Interactions and Applications · Quantum optics and atomic interactions · Advanced Fiber Laser Technologies
