4.6 Article

Effect of oscillator strength and intermediate resonance on the performance of resonant phonon-based terahertz quantum cascade lasers

Journal

JOURNAL OF APPLIED PHYSICS
Volume 113, Issue 11, Pages -

Publisher

AMER INST PHYSICS
DOI: 10.1063/1.4795614

Keywords

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Funding

  1. Natural Science and Engineering Research Council (NSERC) of Canada
  2. Canadian Foundation of Innovation (CFI)
  3. Ontario Research Fund (ORF)
  4. CMC Microsystems
  5. National Major Basic Research Program [2011CB925603]
  6. Natural Science Foundation of China [91221201, 61234005]
  7. NASA
  8. NSF

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We experimentally investigated the effect of oscillator strength (radiative transition diagonality) on the performance of resonant phonon-based terahertz quantum cascade lasers that have been optimized using a simplified density matrix formalism. Our results show that the maximum lasing temperature (T-max) is roughly independent of laser transition diagonality within the lasing frequency range of the devices under test (3.2-3.7 THz) when cavity loss is kept low. Furthermore, the threshold current can be lowered by employing more diagonal transition designs, which can effectively suppress parasitic leakage caused by intermediate resonance between the injection and the downstream extraction levels. Nevertheless, the current carrying capacity through the designed lasing channel in more diagonal designs may sacrifice even more, leading to electrical instability and, potentially, complete inhibition of the device's lasing operation. We propose a hypothesis based on electric-field domain formation and competition/switching of different current-carrying channels to explain observed electrical instability in devices with lower oscillator strengths. The study indicates that not only should designers maximize T-max during device optimization but also they should always consider the risk of electrical instability in device operation. (C) 2013 American Institute of Physics. [http://dx.doi.org/10.1063/1.4795614]

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