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Direct Evidence for the Creation of Micropores in UV-Irradiated Poly(Methyl Methacrylate)

Published online by Cambridge University Press:  21 February 2011

J. A. Moore
Affiliation:
Rensselaer Polytechnic Institute, Polymer Science and Engineering Program, Troy, New York, 12180-3590
Jin-O Choi
Affiliation:
Rensselaer Polytechnic Institute, Polymer Science and Engineering Program, Troy, New York, 12180-3590
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Abstract

Films of PMMA containing azobenzene were prepared by casting from polymer solutions containing the probe or by exposing pre-irradiated films to the vapor of azobenzene. These materials were irradiated at 335 nm and the amount of trans azobenzene which had been photoisomerized was monitored spectrophotometrically. The largest amount of photoisomerization was observed for the pre-irradiated samples which had been penetrated by azobenzene from the vapor, indicating that the created free volume allowed the isomerization to proceed more easily.

Type
Research Article
Copyright
Copyright © Materials Research Society 1990

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References

REFERENCES

1. Ouano, A. C., Polym. Engr. Sci. 18 (4), 306 (1978).Google Scholar
2. Ouano, A. C., in Materials for Microlithography: Radiation Sensitive Polymers, edited by Thompson, L. F., Wilson, C. G. and Frechet, M. J. (ACS Symposium Series 266, Washington, D. C., 1984), pp. 7990.Google Scholar
3. Moreau, W. M., Optical Engr. 22 (2), 181 (1983).Google Scholar
4. Martin, J. W., J. Appl. Poly. 29, 777 (1984).Google Scholar
5. Schultz, A. R., Frank, P., Griffing, B. F., and Young, A. L., J. Polym. Sci., Polym. Phys. 23, 1749 (1985).Google Scholar
6. Choi, J.-O., Moore, J. A., Corelli, J. C., Silverman, J. P., and Bakhru, H., J. Vac. Sci. Technol. B (6), 2286 (1988).Google Scholar
7. Moore, J. A., and Choi, J.-O., Polym. Preprints 30, 335 (1989).Google Scholar
8. Hiraoka, H., IBM J. Res. Dev., 21, 121 (1977).Google Scholar
9. Tarro, R. M., Warden, J. T., Corelli, J. C., Moore, J. A., Steckl, A. J., and, Kumar, S., Microcircuit Engineering 84, edited by Heuberger, A. and Beneking, H. (Academic Press, London), 1985, p. 537.Google Scholar
10. Limm, W., and Winnik, M. A., Proceedings of Photopolymers: Processes and Materials (Society of Plastics Engineers, Inc., Mid-Hudson Section, 1988), pp. 215233.Google Scholar
11. Machin, D. and Rogers, C. E., Encyclopedia of Polymer Science and Technology, Vol. 12 (Interscience Publishers, New York, 1964), pp. 679685.Google Scholar
12. Matsuoka, S., and Kwei, T. K., in Macromolecules: An Introduction to Polymer Science, edited by Bovey, F. A. and Winslow, F. H. (Academic Press, New York, 1979), pp. 398406.Google Scholar
13. Williams, J. L. R., and Daly, R. C., Prog. Polym. Sci. 5, 61 (1977).Google Scholar
14. Horie, K., and Mita, I., Advances in Polymer Science 88, Specialty Polymers/Polymer Physics, (Speringer-Verlag, Berlin, 1989), pp. 106128.Google Scholar
15. Lamarre, L., and Sung, C. S. P., Macromolecules 16, 1729 (1983).Google Scholar
16. Yu, W.-C., and Sung, C. S. P., Macromolecules 21, 365 (1988).Google Scholar