DocumentCode
1387161
Title
A Vertically Integrated CMOS Microsystem for Time-Resolved Fluorescence Analysis
Author
Rae, B.R. ; Jingbin Yang ; McKendry, J. ; Zheng Gong ; Renshaw, D. ; Girkin, J.M. ; Erdan Gu ; Dawson, M.D. ; Henderson, R.K.
Author_Institution
Joint Res. Inst. for Integrated Syst., Univ. of Edinburgh, Edinburgh, UK
Volume
4
Issue
6
fYear
2010
Firstpage
437
Lastpage
444
Abstract
We describe a two-chip micro-scale time-resolved fluorescence analyzer integrating excitation, detection, and filtering. A new 8×8 array of drivers realized in standard low-voltage 0.35-μm complementary metal-oxide semiconductor is bump-bonded to AlInGaN blue micro-pixellated light-emitting diodes (micro-LEDs). The array is capable of producing sample excitation pulses with a width of 777 ps (FWHM), enabling short lifetime fluorophores to be investigated. The fluorescence emission is detected by a second, vertically-opposed 16 × 4 array of single-photon avalanche diodes (SPADs) fabricated in 0.35-μm high-voltage CMOS technology with in-pixel time-gated photon counting circuitry. Captured chip data are transferred to a PC for further processing, including histogramming, lifetime extraction, calibration and background/noise compensation. This constitutes the smallest reported solid-state microsystem for fluorescence decay analysis, replacing lasers, photomultiplier tubes, bulk optics, and discrete electronics. The system is demonstrated with measurements of fluorescent colloidal quantum dot and Rhodamine samples.
Keywords
CMOS integrated circuits; III-V semiconductors; aluminium compounds; avalanche photodiodes; bio-optics; bioMEMS; biosensors; colloidal crystals; fluorescence; gallium compounds; indium compounds; light emitting diodes; microsensors; photomultipliers; semiconductor quantum dots; time resolved spectra; wide band gap semiconductors; 8x8 array; AlInGaN; LED; background-noise compensation; bulk optics; calibration; complementary metal-oxide semiconductor integrated circuits; discrete electronics; fluorescence decay analysis; fluorescence emission; fluorescent colloidal quantum dot; high-voltage CMOS technology; in-pixel time-gated photon counting circuitry; integrating excitation; micropixellated light-emitting diodes; microscale time-resolved fluorescence analysis; photomultiplier tube; rhodamine sample; sample excitation pulse; short lifetime fluorophore; single-photon avalanche diodes; solid-state microsystem; vertically integrated CMOS microsystem; vertically-opposed 16x4 array; Avalanche photodiodes; Biophotonics; Biosensors; CMOS integrated circuits; Fluorescence; Gallium nitride; Light emitting diodes; Biophotonics; GaN micro-light-emitting diodes; biosensors; complementary metal–oxide semiconductor (CMOS) integrated circuits (ICs); fluorescence; fluorescence lifetime; single-photon avalanche diodes;
fLanguage
English
Journal_Title
Biomedical Circuits and Systems, IEEE Transactions on
Publisher
ieee
ISSN
1932-4545
Type
jour
DOI
10.1109/TBCAS.2010.2077290
Filename
5643254
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