Mode-field switching of nanolasers

Daniele Pellegrino (Corresponding author), Pierre Busi, Francesco Pagliano, B.M. Patarata Romeira, Frank W. van Otten, Andrei Silov, Andrea Fiore

Research output: Contribution to journalArticleAcademicpeer-review

5 Citations (Scopus)

Abstract

Due to their small sizes and low threshold, nanolasers play a pivotal role in the field of low-energy scalable photonic technologies. High-speed modulation of nanolasers is needed for their application in data communication, but its implementation has been hampered by the small scales involved, leading to large electrical parasitics. Here we experimentally demonstrate the proof-of-principle of a novel modulation technique, namely, mode-field switching, which unlocks the control of the laser operation via the modulation of the electromagnetic field. In particular, we show that stimulated emission can be inhibited by switching the lasing mode from bright to dark in a three-coupled cavity system. The experimental results are in good agreement with a model that combines coupled-mode theory and rate equations. Using this model, we show that time-dependent detuning schemes enable storage and release of energy under the form of short pulses, placing mode-field switching among the techniques for laser modulation and pulse generation. This scheme is general and can be implemented in every platform displaying coupled and tuneable resonances.
Original languageEnglish
Article number066109
Number of pages9
JournalAPL Photonics
Volume5
Issue number6
DOIs
Publication statusPublished - 24 Jun 2020

Funding

This work was supported by the Netherlands Organisation for Scientific Research (NWO), under Projects No. 12PR3078 and 15PR3198, and by the NWO Zwaartekracht Research Center for Integrated Nanophotonics.

FundersFunder number
Nederlandse Organisatie voor Wetenschappelijk Onderzoek15PR3198, 12PR3078

    Keywords

    • Nanolasers
    • Modulation
    • Photonic crystal cavities
    • Quantum dots
    • Photonics

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