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Synthesis and Characterization of Liquid Crystalline Organosiloxanes Containing 4-Methoxyphenyl 4-(2-alkenyloxy)benzoate
Corresponding Author(s) : Chih-Hung Lin
Asian Journal of Chemistry,
Vol. 28 No. 6 (2016): Vol 28 Issue 6
Abstract
A series of new organosiloxane liquid crystalline materials based on the 4-methoxyphenyl-4-(w-alkenyloxy)benzoate as mesogenic units have been synthesized and their mesomorphic and physical properties have been characterized. A series of new disiloxanes and trisiloxanes contain 4-methoxyphenyl 4-(w-alkenyloxy)benzoate as mesogenic these were synthesized by addition of 4-methoxyphenyl 4-(w-alkenyloxy)benzoate moiety to pentamethylhydrodisiloxane or heptamethylhydrotrisiloxane catalyzed by platinum divinyl-tetramethyldisiloxane complex. The thermal properties of this new series of thermotropic liquid-crystalline siloxanes were studied by differential scanning calorimetry and polarized optical microscope. Disiloxane series compounds were not showed any liquid crystal phase. Trisiloxanes series compounds exhibited nematic liquid crystal phase. The siloxane molecule helped to reduce the melting temperature. The thermal properties of the new siloxane series exhibited a pronounced odd-even effect with the length of alkyl segment.
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- E.A. Corsellis and H.J. Coles, Mole. Cryst. Liq. Cryst., 261, 71 (1995); doi:10.1080/10587259508033453.
- J. Newton, H.J. Coles, P. Hodge and J. Hannington, J. Mater. Chem., 4, 869 (1994); doi:10.1039/jm9940400869.
- H.J. Coles, H. Owen, J. Newton and P. Hodge, Liq. Cryst., 15, 739 (1993); doi:10.1080/02678299308036493.
- H.J. Coles, H. Owen, J. Newton and P. Hodge, Proc. SPIE, 2408, 22 (1995); doi:10.1117/12.207507.
- P. Kloess, J. McComb, H.J. Coles and R. Zentel, Ferroelectrics, 180, 233 (1996); doi:10.1080/00150199608223654.
- G. Scherowsky, A. Schliwa, J. Springer, K. Kuhnpast and W. Trapp, Liq. Cryst., 5, 1281 (1989); doi:10.1080/02678298908026434.
- V.P. Shibaev, M.V. Kozlovsky, N.A. Plate, L.A. Beresnev and L.M. Blinov, Liq. Cryst., 8, 545 (1990); doi:10.1080/02678299008047369.
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- H. Kapitza and R. Zentel, Makromol. Chem., 192, 1859 (1991); doi:10.1002/macp.1991.021920821.
- H. Endo, S. Hachiya, S. Uchida, K. Hashimoto and K. Kawasaki, Liq. Cryst., 9, 635 (1991); doi:10.1080/02678299108030377.
- S.U. Vallerien, F. Kremer, H. Kapitza, R. Zentel and E.W. Fischer, Ferroelectrics, 109, 273 (1990); doi:10.1080/00150199008211425.
- C.H. Lin, Mol. Cryst. Liq. Cryst., 552, 33 (2012); doi:10.1080/15421406.2011.599204.
- C.H. Lin, Int. J. Mol. Sci., 14, 21306 (2013); doi:10.3390/ijms141121306.
- J. Naciri, J. Ruth, G. Crawford, R. Shashidhar and B.R. Ratna, Chem. Mater., 7, 1397 (1995); doi:10.1021/cm00055a019.
- C.S. Hsu and B.S. Her, Macromol. Chem. Phys., 197, 4105 (1996); doi:10.1002/macp.1996.021971211.
- G. Rehage and H. Finkelmann, Adv. Polym. Sci., 60-61, 99 (1984).
References
E.A. Corsellis and H.J. Coles, Mole. Cryst. Liq. Cryst., 261, 71 (1995); doi:10.1080/10587259508033453.
J. Newton, H.J. Coles, P. Hodge and J. Hannington, J. Mater. Chem., 4, 869 (1994); doi:10.1039/jm9940400869.
H.J. Coles, H. Owen, J. Newton and P. Hodge, Liq. Cryst., 15, 739 (1993); doi:10.1080/02678299308036493.
H.J. Coles, H. Owen, J. Newton and P. Hodge, Proc. SPIE, 2408, 22 (1995); doi:10.1117/12.207507.
P. Kloess, J. McComb, H.J. Coles and R. Zentel, Ferroelectrics, 180, 233 (1996); doi:10.1080/00150199608223654.
G. Scherowsky, A. Schliwa, J. Springer, K. Kuhnpast and W. Trapp, Liq. Cryst., 5, 1281 (1989); doi:10.1080/02678298908026434.
V.P. Shibaev, M.V. Kozlovsky, N.A. Plate, L.A. Beresnev and L.M. Blinov, Liq. Cryst., 8, 545 (1990); doi:10.1080/02678299008047369.
S.U. Vallerien, F. Kremer, E.W. Fischer, H. Kapitza, R. Zentel and H. Poths, Makromol. Chem., Rapid. Commun., 11, 593 (1990); doi:10.1002/marc.1990.030111201.
H. Kapitza and R. Zentel, Makromol. Chem., 192, 1859 (1991); doi:10.1002/macp.1991.021920821.
H. Endo, S. Hachiya, S. Uchida, K. Hashimoto and K. Kawasaki, Liq. Cryst., 9, 635 (1991); doi:10.1080/02678299108030377.
S.U. Vallerien, F. Kremer, H. Kapitza, R. Zentel and E.W. Fischer, Ferroelectrics, 109, 273 (1990); doi:10.1080/00150199008211425.
C.H. Lin, Mol. Cryst. Liq. Cryst., 552, 33 (2012); doi:10.1080/15421406.2011.599204.
C.H. Lin, Int. J. Mol. Sci., 14, 21306 (2013); doi:10.3390/ijms141121306.
J. Naciri, J. Ruth, G. Crawford, R. Shashidhar and B.R. Ratna, Chem. Mater., 7, 1397 (1995); doi:10.1021/cm00055a019.
C.S. Hsu and B.S. Her, Macromol. Chem. Phys., 197, 4105 (1996); doi:10.1002/macp.1996.021971211.
G. Rehage and H. Finkelmann, Adv. Polym. Sci., 60-61, 99 (1984).