By John G. Reynolds, Glenn E. Lawson
content material: Polymers and fabrics for antiterrorism and fatherland security: an summary / John G. Reynolds and Glenn E. Lawson --
Synthesis and spectroscopic characterization of molecularly imprinted polymer phosphonate sensors / G.E. Southard ... [et al.] --
improvement of an enzyme-based photoluminescent porous silicon detector for chemical battle brokers / Bradley R. Hart ... [et al.] --
Optical enzyme-based sensors for reagentless detection of chemical analytes /Brandy Johnson-White and H. James Harmon --
layout of sorbent hydrogen bond acidic polycarbosilanes for chemical sensor purposes / Eric J. Houser ... [et al.] --
Non-aqueous polymer gels with extensive temperature functionality / Joseph L. Lenhart ... [et al.] --
Detection of poisonous chemical substances for fatherland safeguard utilizing polyaniline nanofibers / Shabnam Virji, Richard B. Kaner, and Bruce H. Weiller --
purposes of nanoparticles in scintillation detectors / Suree S. Brown, Adam J. Rondinone, and Sheng Dai --
A comparability of insulator-based dielectrophoretic units for the tracking and separation of waterborne pathogens as a functionality of microfabrication method / Gregory J. McGraw ... [et al.] --
layout and synthesis of dendritic tethers for the immobilization of antibodies for the detection of sophistication A bioterror pathogens / Charles W. Spangler ... [et al.] --
Amphiphilic polymers with effective antibacterial task / M. Firat Ilker, Gregory N. Tew, and E. Bryan Coughlin --
Catalysts for cardio decontamination of chemical conflict brokers lower than ambient stipulations / Craig L. Hill ... [et al.] --
Ultrastable nanocapsules from headgroup polymerizable divinylbenzamide phosphoethanolamine / Glenn E. Lawson and Alok Singh --
Nanoencapsulation of organophosphorus acid anhydrolase with mesoporous fabrics for chemical agent decontamination in natural solvents / Kate okay. Ong ... [et al.].
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Additional resources for Antiterrorism and Homeland Defense. Polymers and Materials
The experimental setup shown in Figure 3 uses a blue, light emitting diode as a light source ( λ , ^ = 434 nm, F W H M = 83 nm, Kingbright, City of Industry, C A ) coupled directly into the edge of the microscope slide. ; ACS Symposium Series; American Chemical Society: Washington, DC, 2007. ch004 60 Figure J. The interaction of analyte with the porphyrin-enzyme complex results in changes in the porphyrin absorbance spectrum. Figure 2. Top: Standard absorption measurement; Bottom: evanescent wave absorbance spectroscopy.
D. J. J. Appl. Phys. 1997, 82(3), 909-965. Buriak, J. M . Chem. Rev. 2002, 102, 1271-1308. ; Zhao, X . ; Hamers, R. ; Smith, L . M . J. Amer. Chem. Soc. 2000, 122, 1205-1209. -P. ; Greiner, D . ; Sailor, M . J. J. Amer. Chem. Soc. 1999, 121, 7925-7930. Wojtyk, J. T. C ; Moran, Κ. ; Wayner, D . D . M . Langmuir 2002, 18, 6081-6087. ; ACS Symposium Series; American Chemical Society: Washington, DC, 2007. ch003 56 15. Pijanowska, D. G . ; Lysko, J. M . ; Torbicz, W. Sensors and Actuators Β 2003, 91, 152-157.
The commercial availability of a wide variety of enzymes and recent advances in molecular biology allowing for the isolation of the responsible gene(s) and expression of the product in large quantities make enzyme-based technologies attractive. Enzymes can also be modified by genetic manipulation to yield products with potentially more desirable characteristics ( J 6). Enzyme-based detection often relies on a change in the rate of production of a measurable product of enzymatic catalysis. Detection of an enzyme substrate is based on comparing the rate of change in product concentration in an unknown concentration of analyte to that in a known concentration of analyte.
Antiterrorism and Homeland Defense. Polymers and Materials by John G. Reynolds, Glenn E. Lawson