Title :
Multispectral Quantum Dots-in-a-Well Infrared Detectors Using Plasmon Assisted Cavities
Author :
Shenoi, Rajeev V. ; Rosenberg, Jessie ; Vandervelde, Thomas E. ; Painter, Oskar J. ; Krishna, Sanjay
Author_Institution :
Electr. & Comput. Eng. Dept., Univ. of New Mexico, Albuquerque, NM, USA
fDate :
7/1/2010 12:00:00 AM
Abstract :
We present the design, fabrication, and characterization, of multi-spectral quantum dots-in-a-well (DWELL) infrared detectors, by the integration of a surface plasmon assisted resonant cavity with the infrared detector. A square lattice and rectangular lattice cavity, formed by modifying the square lattice have been used in this design. By confining the resonant mode of the cavity to detector active region, the detector responsivity and detectivity have been improved by a factor of 5. A spectral tuning of 5.5 to 7.2 ¿m has been observed in the peak response of the detectors, by tuning the lattice constant of the cavity. Simulations indicate the presence of two modes of absorption, which have been experimentally verified. The use of a rectangular lattice predicts highly polarization sensitive modes in x- and y-direction, which are observed in fabricated detectors. A peak detectivity of 3.1 x 109 cm·¿{Hz} /W was measured at 77 K. This design offers a cost-effective and simple method of encoding spectral and polarization information, in infrared focal plane arrays.
Keywords :
focal planes; infrared detectors; integrated optics; optical fabrication; optical resonators; photodetectors; surface plasmon resonance; focal plane arrays; infrared detectors; multispectral quantum dots-in-a-well; optical fabrication; optical integration; rectangular lattice cavity; resonant mode; spectral tuning; square lattice; surface plasmon assisted resonant cavity; temperature 77 K; Absorption; Encoding; Fabrication; Infrared detectors; Infrared spectra; Lattices; Plasmons; Polarization; Quantum dots; Resonance; Focal plane array; long wavelength infrared (LWIR); multi-spectral detection; photodetector; quantum dots;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2010.2042682