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Double-lattice photonic-crystal resonators enabling high-brightness semiconductor lasers with symmetric narrow-divergence beams

  • Masahiro Yoshida
  • , Menaka De Zoysa
  • , Kenji Ishizaki
  • , Yoshinori Tanaka
  • , Masato Kawasaki
  • , Ranko Hatsuda
  • , Bongshik Song
  • , John Gelleta
  • , Susumu Noda
  • Kyoto University
  • Mitsubishi Electric Corporation
  • Sungkyunkwan University

Research output: Contribution to journalArticlepeer-review

Abstract

Achieving high brightness (where brightness is defined as optical power per unit area per unit solid angle) in semiconductor lasers is important for various applications, including direct-laser processing and light detection and ranging for next-generation smart production and mobility. Although the brightness of semiconductor lasers has been increased by the use of edge-emitting-type resonators, their brightness is still one order of magnitude smaller than that of gas and solid-state/fibre lasers, and they often suffer from large beam divergence with strong asymmetry and astigmatism. Here, we develop a so-called ‘double-lattice photonic crystal’, where we superimpose two photonic lattice groups separated by one-quarter wavelength in the x and y directions. Using this resonator, an output power of 10 W with a very narrow-divergence-angle (<0.3°) symmetric surface-emitted beam is achieved from a circular emission area of 500 μm diameter under pulsed conditions, which corresponds to a brightness of over 300 MW cm −2 sr −1 . In addition, an output power up to ~7 W is obtained under continuous-wave conditions. Detailed analyses on the double-lattice structure indicate that the resonators have the potential to realize a brightness of up to 10 GW cm −2 sr −1 , suggesting that compact, affordable semiconductor lasers will be able to rival existing gas and fibre/disk lasers.

Original languageEnglish
Pages (from-to)121-128
Number of pages8
JournalNature Materials
Volume18
Issue number2
DOIs
StatePublished - 1 Feb 2019
Externally publishedYes

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