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Gel-Cast Organic-Inorganic Systems

Published online by Cambridge University Press:  15 February 2011

K. Maes
Affiliation:
Materials Research Laboratory, The Pennsylvania State University, University Park, PA
M.R. Silsbee
Affiliation:
Materials Research Laboratory, The Pennsylvania State University, University Park, PA
D.M. Roy
Affiliation:
Materials Research Laboratory, The Pennsylvania State University, University Park, PA
J.H. Adair
Affiliation:
Materials Science and Engineering Department, University of Florida, Gainesville.
B.E. Scheetz
Affiliation:
Materials Research Laboratory, The Pennsylvania State University, University Park, PA
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Abstract

The studies reported herein were designed to develop a better understanding of the influence of different crosslinking agents on the polymerization of acrylamide gel systems and upon the resulting physical properties of the composites. Specimens were developed via a gel-casting process for viscoelastic and diametral tensile strength testing and the chemical reactions were monitored by Raman spectroscopy and isothermal calorimetry. The studies have demonstrated the ability to tailor the properties of a gel-cast system over a relatively wide range of reaction rates and the resulting mechanical properties by utilizing small adjustments to the overall chemistry of the system.

Type
Research Article
Copyright
Copyright © Materials Research Society 1992

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References

REFERENCES

[1] MacWilliams, D.C., Acrylamide and other alpha, beta unsaturated amides, in Functional Monomers, Marcel Dekker, Inc., New York, Eds. Yocum, R.H. and Nyquist, E.B., 1197 (1973).Google Scholar
[2] Roy, D.M., New strong cement materials: chemically bonded ceramics, Science, 3, 651658 (1987).10.1126/science.235.4789.651CrossRefGoogle Scholar
[3] Silsbee, M.R., Roy, D.M. and Adair, J.H., The chemistry of MDF cements produced from polyacrylamidecement- waterpastes, Special cements with advanced properties, Ed. Scheetz, B.E., Materials Research Society, Vol 179, 129144 (1990).10.1557/PROC-179-129CrossRefGoogle Scholar
[4] Silsbee, M.R., Perez-Pena, M. and Roy, D.M., A view of MDF pastes spccial cements with advanced properties, Ed. Scheetz, B.E., Materials Research Society, Vol 179, 145158 (1990b).10.1557/PROC-179-145CrossRefGoogle Scholar
[5] Heiland, P.M., Processing and properties of chemically derived calcium silicate cement, M.S. Thesis, The Pennsylvania State University (1990).Google Scholar
[6] Conway, N.W., Almond, S.W., Briscoe, J.E. and Harris, L.E., Chemical model for the rheological behavior of crosslinked fluid systems, J. Petr. Techn., 315320 (1983).10.2118/9334-PACrossRefGoogle Scholar
[7] Menjivar, J.A., Use of gelation theory to characterize metal crosslinked polymer gels, Am. Chlem. Soc. 213, Ed Glass, J.E., 209226 (1986).Google Scholar
[8] Charlesby, A., Molecular weight changes and network formation by scission and crosslinking, Crosslinking and Scission in Polymers, Kluwer Academic Publisher, ed. Gueven, O., 1–13 (1990).Google Scholar
[9] Loy, B.R., Chrisman, R.W., Nyquist, R.A. and Putzig, C.L., A Raman method for determining percent conversion of polyacrylamide to poly-N-dimethylamino-methylacrylamide, Appl. Spect.,. 33, 174175 (1979).10.1366/0003702794926065CrossRefGoogle Scholar
[10] Gupta, M.K. and Bansil, R., Laser Raman spectroscopy of Polyacrylamide, J. Poly. Sc. Poly. Sc. Ed. 19. 353360 (1981).10.1002/pol.1981.180190214CrossRefGoogle Scholar
[11] Gupta, M.K. and Bansil, R., Raman spectroscopy as a structural probe of polyacrylamide gels, Poly. Prep. 22 192193 (1981).Google Scholar
[12] Gupta, M.K. and Bansil, R., Raman spectroscopic and thermal studies of polyacrylamide gels with varying monomer comonomer ratios, J. Poly. Sc. Poly. Letters. 21, 969977 (1983).10.1002/pol.1983.130211202CrossRefGoogle Scholar