A high-power fiber-coupled semiconductor light source with low spatio-temporal coherence

ORAL

Abstract

Interference-induced distortions pose a significant challenge to a variety of experimental techniques, ranging from full-field imaging applications in biological research to the creation of optical potentials in quantum gas microscopy. Here, we present a design of a high-power, fiber-coupled semiconductor light source with low spatio-temporal coherence that bears the potential to reduce the impact of such distortions. The device is based on an array of non-lasing semiconductor emitters mounted on a single chip whose optical output is coupled into a multi-mode fiber. By populating a large number of fiber modes, the low spatial coherence of the input light is further reduced due to the differing optical path lengths amongst the modes and the short coherence length of the light. In addition to theoretical calculations showcasing the feasibility of this approach, we present experimental measurements verifying the low degree of spatial coherence achievable with such a source, including a detailed analysis of the speckle contrast at the fiber end. \newline

Authors

  • Robert Schittko

    Harvard University

  • Anton Mazurenko

    Harvard University

  • M. Eric Tai

    Harvard University

  • Alexander Lukin

    Harvard University

  • Matthew Rispoli

    Harvard University

  • Tim Menke

    Harvard University

  • Adam M. Kaufman

    Harvard University

  • Markus Greiner

    Harvard University