Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10136575 | Infrared Physics & Technology | 2018 | 8 Pages |
Abstract
We are developing small pixel 12-μm pitch resonator-QWIPs for infrared imaging at 8â¯Î¼m and 10â¯Î¼m. The materials and geometries are designed to yield 44% quantum efficiency (QE) at 1.0â¯Ãâ¯1018â¯cmâ3 doping and 56% at 1.2â¯Ãâ¯1018â¯cmâ3 for the 8â¯Î¼m detectors and 47% at 1.0â¯Ãâ¯1018â¯cmâ3 for the 10â¯Î¼m detector. Because of production variability and excess detector tunneling current at large bias, the maximum QE for the 8â¯Î¼m detectors is measured to be 24.6% and 56.4%, respectively, while that for the 10â¯Î¼m detector is 44%. Focal plane arrays of 1280â¯Ãâ¯1024 resolution were produced from the lower doping, 8â¯Î¼m material. Their performance is the same as the test detectors up to the maximum internal bias of the readout circuit. From the test detector I-V characteristics, the performance can be further projected to higher bias, at which the FPAs can offer 23â¯mK sensitivity at 3.7â¯ms integration time from the lower doping material and 21â¯mK at 3.2â¯ms from the higher doping material. For the 10â¯Î¼m FPAs, the sensitivity is projected to be 30â¯mK at 3.8â¯ms. Therefore, we have demonstrated high sensitivity and fast R-QWIP FPAs down to 12-μm pitch. To expand the application envelope of the resonator-pixel technology, we have deigned resonant geometries for other infrared materials. Experimental efforts are underway.
Related Topics
Physical Sciences and Engineering
Physics and Astronomy
Atomic and Molecular Physics, and Optics
Authors
K.K. Choi, S.C. Allen, J.G. Sun, D. Endres, K.A. Olver, R.X. Fu,