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Novel Self-Complimentary Tricyclic Heterocycles: Expanding the Chemistry of Self-Assembled Rosette Nanotubes

Published online by Cambridge University Press:  01 February 2011

Gabor Borzsonyi
Affiliation:
National Institute for Nanotechnology, Supramolecular Nanoscale Assembly Group, 11421 Saskatchewan Drive, Edmonton, T6G2M9, Canada, 780-641-1755, 780-641-1601
Andrew J. Myles
Affiliation:
andrew.myles@nrc-cnrc.gc.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
Ross Johnson
Affiliation:
rossj@ualberta.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
Jae-Young Cho
Affiliation:
Jae-Young.Cho@nrc-cnrc.gc.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
Takeshi Yamazaki
Affiliation:
Takeshi.Yamazaki@nrc-cnrc.gc.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
Andriy Kovalenko
Affiliation:
Andriy.Kovalenko@nrc-cnrc.gc.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
Hicham Fenniri
Affiliation:
hicham.fenniri@ualberta.ca, National Institute for Nanotechnology, Edmonton, T6G2M9, Canada
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Abstract

In an effort to increase the internal and external diameter of the RNT's, tricyclic GΛC base derivatives (XGΛC) have been synthesized and characterized. Hierchichal self-assembly results in formation of RNT's with an increased diameter, as evidenced by AFM and TEM measurements. Progress on the derivitization and characterization of the XGΛC RNT's will be presented.

Type
Research Article
Copyright
Copyright © Materials Research Society 2008

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References

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