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Items: 10

1.

Reagent- and separation-free measurements of urine creatinine concentration using stamping surface enhanced Raman scattering (S-SERS).

Li M, Du Y, Zhao F, Zeng J, Mohan C, Shih WC.

Biomed Opt Express. 2015 Feb 19;6(3):849-58. doi: 10.1364/BOE.6.000849.

2.

Noninvasive glucose sensing by transcutaneous Raman spectroscopy.

Shih WC, Bechtel KL, Rebec MV.

J Biomed Opt. 2015 May;20(5):051036. doi: 10.1117/1.JBO.20.5.051036.

3.

Raman signal enhancement via elastic light scattering.

Hokr BH, Yakovlev VV.

Opt Express. 2013 May 20;21(10):11757-62. doi: 10.1364/OE.21.011757.

4.

A novel non-imaging optics based Raman spectroscopy device for transdermal blood analyte measurement.

Kong CR, Barman I, Dingari NC, Kang JW, Galindo L, Dasari RR, Feld MS.

AIP Adv. 2011 Sep;1(3):32175.

5.

Detection of squamous cell carcinoma and corresponding biomarkers using optical spectroscopy.

Beumer HW, Vishwanath K, Puscas L, Afshari HR, Ramanujam N, Lee WT.

Otolaryngol Head Neck Surg. 2011 Mar;144(3):390-4. doi: 10.1177/0194599810394290.

6.

Influence of tissue absorption and scattering on the depth dependent sensitivity of Raman fiber probes investigated by Monte Carlo simulations.

Reble C, Gersonde I, Lieber CA, Helfmann J.

Biomed Opt Express. 2011 Feb 7;2(3):520-33. doi: 10.1364/BOE.2.000520.

7.
8.

Development of robust calibration models using support vector machines for spectroscopic monitoring of blood glucose.

Barman I, Kong CR, Dingari NC, Dasari RR, Feld MS.

Anal Chem. 2010 Dec 1;82(23):9719-26. doi: 10.1021/ac101754n.

9.

Requirements for calibration in noninvasive glucose monitoring by Raman spectroscopy.

Lipson J, Bernhardt J, Block U, Freeman WR, Hofmeister R, Hristakeva M, Lenosky T, McNamara R, Petrasek D, Veltkamp D, Waydo S; C8 MediSensors,..

J Diabetes Sci Technol. 2009 Mar 1;3(2):233-41.

10.

Turbidity-corrected Raman spectroscopy for blood analyte detection.

Barman I, Singh GP, Dasari RR, Feld MS.

Anal Chem. 2009 Jun 1;81(11):4233-40. doi: 10.1021/ac8025509.

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