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Optical gain and lasing from bulk cadmium sulfide nanocrystals through bandgap renormalization.

Ivo TangheMargarita SamoliIsabella WagnerServet Ataberk CayanAli Hossain KhanKai ChenJustin M HodgkissIwan MoreelsDries Van ThourhoutZeger HensPieter Geiregat
Published in: Nature nanotechnology (2023)
Strongly confined colloidal quantum dots have been investigated for low-cost light emission and lasing for nearly two decades. However, known materials struggle to combine technologically relevant metrics of low-threshold and long inverted-state lifetime with a material gain coefficient fit to match cavity losses, particularly under electrical excitation. Here we show that bulk nanocrystals of CdS combine an exceptionally large material gain of 50,000 cm -1 with best-in-class gain thresholds below a single exciton per nanocrystal and 3 ns gain lifetimes not limited by non-radiative Auger processes. We quantitatively account for these findings by invoking a strong bandgap renormalization effect, unobserved in nanocrystals to date, to the best of our knowledge. Next, we demonstrate broadband amplified spontaneous emission and lasing under quasi-continuous-wave conditions. Our results highlight the prospects of bulk nanocrystals for lasing from solution-processable materials.
Keyphrases
  • energy transfer
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