• DocumentCode
    3852352
  • Title

    Electrically Driven Photonic Crystal Nanocavity Devices

  • Author

    Gary Shambat;Bryan Ellis;Jan Petykiewicz;Marie A. Mayer;Arka Majumdar;Tomas Sarmiento;James S. Harris;Eugene E. Haller;Jelena Vuckovic

  • Author_Institution
    Department of Electrical Engineering , Stanford University, Stanford, CA, USA
  • Volume
    18
  • Issue
    6
  • fYear
    2012
  • Firstpage
    1700
  • Lastpage
    1710
  • Abstract
    Interest in photonic crystal nanocavities is fueled by advances in device performance, particularly in the development of low-threshold laser sources. Effective electrical control of high-performance photonic crystal lasers has thus far remained elusive due to the complexities associated with current injection into cavities. A fabrication procedure for electrically pumping photonic crystal membrane devices using a lateral p-i-n junction has been developed and is described in this study. We have demonstrated electrically pumped lasing in our junctions with a threshold of 181 nA at 50 K-the lowest threshold ever demonstrated in an electrically pumped laser. At room temperature, we find that our devices behave as single-mode light-emitting diodes (LEDs), which when directly modulated, have an ultrafast electrical response up to 10 GHz corresponding to less than 1 fJ/bit energy operation-the lowest for any optical transmitter. In addition, we have demonstrated electrical pumping of photonic crystal nanobeam LEDs, and have built fiber taper coupled electro-optic modulators. Fiber-coupled photodetectors based on two-photon absorption are also demonstrated as well as multiply integrated components that can be independently electrically controlled. The presented electrical injection platform is a major step forward in providing practical low power and integrable devices for on-chip photonics.
  • Keywords
    "Cavity resonators","Doping","Photonic crystals","Laser excitation","Pump lasers","Light emitting diodes","Semiconductor lasers"
  • Journal_Title
    IEEE Journal of Selected Topics in Quantum Electronics
  • Publisher
    ieee
  • ISSN
    1077-260X
  • Type

    jour

  • DOI
    10.1109/JSTQE.2012.2193666
  • Filename
    6179300