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Silicon Platform for Mid-infrared Optofluidic Sensors

Published online by Cambridge University Press:  13 March 2013

Pao Lin
Affiliation:
Microphotonics Center, MIT, Cambridge, Massachusetts, USA.
Hao-Yu Greg Lin
Affiliation:
Harvard University, Cambridge, Massachusetts, USA.
Vivek Singh
Affiliation:
Microphotonics Center, MIT, Cambridge, Massachusetts, USA.
Neil Sunil Patel
Affiliation:
Microphotonics Center, MIT, Cambridge, Massachusetts, USA.
Lionel Kimerling
Affiliation:
Microphotonics Center, MIT, Cambridge, Massachusetts, USA.
Anuradha Murthy Agarwal
Affiliation:
Microphotonics Center, MIT, Cambridge, Massachusetts, USA.
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Abstract

Mid-Infrared optofluidics based silicon sensor platforms are demonstrated. Silicon is a great candidate for mid-infrared optofluidics for the following reasons: (1) Silicon has a broad transmission window up to 7 um (2) Silicon offers CMOS compatible and monolithic fabrication (3) Silicon has high chemical resistance that can withstand high temperature, acid/base solution and organic solvents. (4) Silicon is a non-toxic environmentally friendly material. The fabricated mid-infrared optofluidic sensor can replace bulky instruments, such as FTIR, with a lab-on-a-chip system, while achieving much higher sensitivity.

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Articles
Copyright
Copyright © Materials Research Society 2013

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References

REFERENCES

Fan, X., White, I. M., Nat. Photonics 2011, 5, 591.CrossRefGoogle Scholar
Monat, C., Domachuk, P., Eggleton, B. J., Nat. Photonics 2007, 1, 106.CrossRefGoogle Scholar
Lee, K.-L., Wei, P.-K., Small 2010, 6, 1900.CrossRefGoogle Scholar
Prudenzano, F., Mescia, L., Allegretti, L. A., Calò, G., D’Orazio, A., De Sario, M., Palmisano, T., Petruzzelli, V., Opt. Quant. Electron. 2009, 41, 55.CrossRefGoogle Scholar
Wu, H.-Y., Choi, C. J., Cunningham, B. T., Small 2012, 8, 2769.CrossRefGoogle ScholarPubMed
Hu, Z., Glidle, A., Ironside, C. N., Sorel, M., Strain, M. J., Cooper, J., Yin, H., Lab Chip 2012, 12, 2850.CrossRefGoogle Scholar
Yebo, N. A., Lommens, P., Hens, Z., Baets, R., Opt. Express 2010, 18, 11859.CrossRefGoogle Scholar
Sun, Y., Fan, X., Anal. Bioanal. Chem. 2011, 399, 205.CrossRefGoogle Scholar
Maxa, J.-J., Chapados, C., J. Chem. Phys. 2009, 130, 124513.CrossRefGoogle Scholar