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Nanolasers: More than a decade of progress, developments and challenges.

Thomas Charles Ellis1, Sahand Eslami1, Stefano Palomba1

  • 1School of Physics, The University of Sydney, Sydney, Australia.

Nanophotonics (Berlin, Germany)
|December 5, 2024
PubMed
Summary

Nanolasers, utilizing plasmonics, overcome diffraction limits for compact, efficient devices. Despite challenges, they offer revolutionary potential for nanophotonic circuits and future laser technology.

Keywords:
nanolasernanolaser applicationsnanolaser arraynanolaser categoryplasmonicsthresholdless lasing

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Area of Science:

  • Photonics and Nanotechnology
  • Plasmonics and Optoelectronics

Background:

  • Laser diode miniaturization is limited by diffraction, hindering integration into nanophotonic circuits.
  • Plasmonics enables the development of nanolasers that bypass diffraction limits.
  • Nanolasers offer potential for ultralow energy consumption, small volumes, and high modulation speeds.

Purpose of the Study:

  • To define and categorize nanolasers.
  • To examine the properties and applications of nanolasers.
  • To assess the revolutionary potential of nanolasers versus their inherent limitations.

Main Methods:

  • Monolithic review of existing nanolaser research.
  • Formulation of a nanolaser definition.
  • Categorization of nanolasers based on properties and applications.

Main Results:

  • Nanolasers are defined as diffraction-unlimited devices.
  • Categorization of nanolasers based on their unique characteristics.
  • Identification of key properties like low energy use and high speed.

Conclusions:

  • Nanolasers present a potential technological revolution for integrated photonics.
  • Significant challenges remain for the widespread development and commercial adoption of nanolasers.
  • Further research is needed to overcome limitations and fully realize nanolaser potential.