4.8 Article

Ultra-coherent Fano laser based on a bound state in the continuum

Journal

NATURE PHOTONICS
Volume 15, Issue 10, Pages 758-764

Publisher

NATURE PORTFOLIO
DOI: 10.1038/s41566-021-00860-5

Keywords

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Funding

  1. Danish National Research Foundation through NanoPhoton - Center for Nanophotonics [DNRF147]
  2. European Research Council (ERC) under the European Union [834410 Fano]
  3. Villum Fonden though the NATEC Center [8692]

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Quantum noise is suppressed by a bound state in the continuum (BIC) approach, enabling a microlaser with narrow linewidth compared to other small lasers.
It is an important challenge to reduce the power consumption and size of lasers, but progress has been impeded by quantum noise overwhelming the coherent radiation at reduced power levels. Thus, despite considerable progress in microscale and nanoscale lasers, such as photonic crystal lasers, metallic lasers and plasmonic lasers, the coherence length remains very limited. Here we show that a bound state in the continuum based on Fano interference can effectively quench quantum fluctuations. Although fragile in nature, this unusual state redistributes photons such that the effect of spontaneous emission is suppressed. Based on this concept, we experimentally demonstrate a microscopic laser with a linewidth that is more than 20 times smaller than existing microscopic lasers and show that further reduction by several orders of magnitude is feasible. These findings pave the way for numerous applications of microscopic lasers and point to new opportunities beyond photonics. Quantum noise is suppressed by a bound state in the continuum (BIC) approach, enabling a microlaser with narrow linewidth compared to other small lasers.

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