Biomedical Engineering Reference
In-Depth Information
36.
Strickler, J.H., Webb, W.W. (1991). Three-Dimensional Optical Storage in Refractive Media by
Two-Photon Point Excitation. Opt. Lett. 16:1780-1782.
37.
Birge, R.R. (1992). Protein-Based Optical Computing and Memories. IEEE Computer
35:56-67.
38.
Birge, R.R., Gillespie, N.B., Izaguirre, E.W., Kuznetsov, A., Lawrence, A.F., Singh, D., Song,
Q.W., Schmidt, E., Sturat, J.A., Seetharaman, S., Wise, K.J. (1999). Biomolecular Electronics:
Protein-Based Associative Processors and Volumetric Memories. J. Phys. Chem. B
103:10746-10766.
39.
McCormick, F.B., Cokgor, I., Esener, S.C., Dvornikov, A.S., Rentzepis, P.M. (1996) Two-Photon
Absorption Based 3-D Optical Memories. In: Schwartz, T.A., Francis, M., eds. High Density
Data Recording and Retrieval Technologies, Proc. SPIE , 2604:2332.
40.
Lee, B.K., Chih-Jen, C. R., Liang-Chian, C.D., Cheng, J., Yeong-Ning, C.I., Beyette, F.R., Stecki,
A.J. (2001). High-Density Er-Implanted GaN Optical Memory Devices. Appl. Opt .
40:3552-3558.
41.
Ayyagari, M.S., Kamtekar, S., Pande, R., Marx, K.A., Kumar, J., Tripathy, S.K., Kaplan, D.L.
(1995). Biosensors for Pesticide Detection Based on Alkaline Phosphatase-Catalyzed
Chemileuminescence. Mater. Sci. Eng. C 2:191-196.
42.
EPA Report EP1.29/2, (1980).
43.
Ayyagari, M.S., Kamtekar, S., Pande, R., Marx, K.A., Kumar, J., Tripathy, S.K., Akkara, J.,
Kaplan, D.L. (1995). Chemileuminescence-Based Inhibition Kinetics of Alkaline Phosphatase
in the Development of a Pesticide Biosensor. Biotech. Prog. 11:699-703.
44.
Pande, R., Kamtekar, S., Ayyagari, M.S., Kamath, M., Marx, K.A., Kumar, J., Tripathy, S.K.,
Kaplan, D.L. (1996). A Biotinylated Undecylthiophene Copolymer Bioconjugate for Surface
Immobilization: Creating an Alkaline Phosphatase Chemileuminescence-Based Biosensor.
Bioconjugate Chem. 7:159-164.
45.
Pande, R., Kamtekar, S., Ayyagari., Marx, K.A., Kumar, J., Tripathy, S.K., Kaplan, D.L. (1995)
Integrating Biotinylated Polyalkylthiophene Thin Films with Biological Macromolecules:
Biosensing Organophosphorus Pesticides and Metal Ions with Surface Immobilized
Alkaline Phosphatase Utilizing Chemileuminescence Measurements. Smart Mater. SPIE
2441:12-22.
46.
Ayyagari, M.S., Gao, H., Bihari, B., Chittibabu, K.G., Kumar, J., Marx, K.A., Kaplan, D.L.,
Tripathy, S.K. (1994). Molecular Self-Assembly on Optical Fibre-based Fluorescence Sensors.
In: Lieberman, R.A., ed. Chemical, Biochemical and Environmental Fibre Sensors, Proc. SPIE,
2068:168-178.
47.
Kamtekar, S., Pande, R., Ayyagari., M.S., Marx, K.A., Kaplan, D.L., Kumar, J., Tripathy,
S.K.(1995). A Chemileuminescence-Based Biosensor for Metal Ion Detection. Mater. Sci. Eng. C
3:79-83.
48.
Kamtekar, S., Pande, R., Ayyagari, M.S., Kaplan, D.L., Marx, K.A., Kumar, J., Tripathy, S.K.(1996).
Trace Analysis of Zn(II), Be(II), and Bi(III) by Enzyme-Catalyzed Chemileuminescence. Anal.
Chem. 68:216-220.
49.
Townshend, A., Vaughan, A. (1970). Detection of Traces of Zinc by Activation of Apoalkaline
Phosphatase. Anal. Chim. Acta 49:366-367.
50.
Guilbault, G.G., Sadar, M.H., Zimmer, M. (1969). Analytical Applications of the Phosphatase
Enzyme System. Determination of Bismuth, Beryllium and Pesticides. Anal. Chim. Acta
44:361-367.
51.
Townshend, A., Vaughn, A. (1969). Applications of Enzyme-Catalyzed Reactions in Trace
Analysis-IV-Determination of Beryllium and Zinc by Their Inhibition of Calf-Intestinal
Alkaline Phosphatase. Talanta 16:929-937.
52.
Magner, E. (1998). Trends in Electrochemical Biosensors. Analyst 123:1967-1970.
53.
Kuhn, L.S. (1998). Biosensors: Blockbuster or Bomb? Electrochemical Biosensors for Diabetes
Monitoring. Electrochem.l Soc. Interface , Winter:26-31.
54.
Diaz, A.F., Hall. B. (1983). Mechanical Properties of Electrochemically Prepared Polypyrrole
Films. IBM J. Res. Dev . 27:342-345.
55.
Warren, L.F., Walker, J.A., Anderson, D.P., Rhodes, C.G., Buckley, L. (1989). A Study of
Conducting Polymer Morphology. J. Electrochem. Soc. 136:2286-2295.
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