Home / Publications / High-temperature phthalonitrile matrix containing silane fragments

High-temperature phthalonitrile matrix containing silane fragments

Vladimir Evgenievich Terekhov 1, 2
Vladimir Evgenievich Terekhov
Alexey Alekseevich Bogolyubov 2
Alexey Alekseevich Bogolyubov
Oleg Sergeevich Morozov 1, 2
Oleg Sergeevich Morozov
Ekaterina Sergeevna Afanaseva 1, 2
Ekaterina Sergeevna Afanaseva
Boris A. Bulgakov 1, 2
Boris A. Bulgakov
Alexander Victorovich Babkin 1, 2
Alexander Victorovich Babkin
Alexey Valer'evich Kepman 1, 2
Alexey Valer'evich Kepman
Viktor Vasilyvich Avdeev 1, 2
Viktor Vasilyvich Avdeev
2 Institute of New Carbon Materials and Technologies (INCMaT), Moscow, Russian Federation
Published 2020-11-03
CommunicationVolume 30, Issue 6, 796-798
11
Share
Cite this
GOST
 | 
Cite this
GOST Copy
Terekhov V. E. et al. High-temperature phthalonitrile matrix containing silane fragments // Mendeleev Communications. 2020. Vol. 30. No. 6. pp. 796-798.
GOST all authors (up to 50) Copy
Terekhov V. E., Bogolyubov A. A., Morozov O. S., Afanaseva E. S., Bulgakov B. A., Babkin A. V., Kepman A. V., Avdeev V. V. High-temperature phthalonitrile matrix containing silane fragments // Mendeleev Communications. 2020. Vol. 30. No. 6. pp. 796-798.
RIS
 | 
Cite this
RIS Copy
TY - JOUR
DO - 10.1016/j.mencom.2020.11.036
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.11.036
TI - High-temperature phthalonitrile matrix containing silane fragments
T2 - Mendeleev Communications
AU - Terekhov, Vladimir Evgenievich
AU - Bogolyubov, Alexey Alekseevich
AU - Morozov, Oleg Sergeevich
AU - Afanaseva, Ekaterina Sergeevna
AU - Bulgakov, Boris A.
AU - Babkin, Alexander Victorovich
AU - Kepman, Alexey Valer'evich
AU - Avdeev, Viktor Vasilyvich
PY - 2020
DA - 2020/11/03
PB - Mendeleev Communications
SP - 796-798
IS - 6
VL - 30
ER -
BibTex
 | 
Cite this
BibTex (up to 50 authors) Copy
@article{2020_Terekhov,
author = {Vladimir Evgenievich Terekhov and Alexey Alekseevich Bogolyubov and Oleg Sergeevich Morozov and Ekaterina Sergeevna Afanaseva and Boris A. Bulgakov and Alexander Victorovich Babkin and Alexey Valer'evich Kepman and Viktor Vasilyvich Avdeev},
title = {High-temperature phthalonitrile matrix containing silane fragments},
journal = {Mendeleev Communications},
year = {2020},
volume = {30},
publisher = {Mendeleev Communications},
month = {Nov},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.11.036},
number = {6},
pages = {796--798},
doi = {10.1016/j.mencom.2020.11.036}
}
MLA
Cite this
MLA Copy
Terekhov, Vladimir Evgenievich, et al. “High-temperature phthalonitrile matrix containing silane fragments.” Mendeleev Communications, vol. 30, no. 6, Nov. 2020, pp. 796-798. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.11.036.

Keywords

heat-resistance
phthalonitriles
processability
resins
thermoset

Abstract

A new low melting highly hydrolytically stable phthalonitrile monomer containing silane fragment was synthesized by a three-step procedure and cured to obtain a highly heatresistant thermoset. The polymer demonstrated the glass transition temperature of 485°C and the decomposition onset temperature over 500°C. Stiffness of the obtained thermoset appeared to be the highest among those of the reported silicon-containing phthalonitrile thermosets.

References

1.
10.1016/j.mencom.2020.11.036_bib0005
Griffith
Copolymers, Polyblends, and Composites, 1975
2.
10.1016/j.mencom.2020.11.036_bib0010
Ting
Cyclopolymerization and Polymers with Chain-Ring Structures, 1982
3.
Amine-Cured Bisphenol-Linked Phthalonitrile Resins
Keller T.M., Price T.R.
Journal of Macromolecular Science Part A - Chemistry, 1982
4.
Phthalonitrile-based high temperature resin
Keller T.M.
Journal of Polymer Science, Part A: Polymer Chemistry, 1988
5.
Enhanced mechanical properties at 400 °C of carbon fabric reinforced phthalonitrile composites by high temperature postcure
Sun B., Lei Q., Guo Y., Shi H., Sun J., Yang K., Zhou H., Li Y., Hu N., Wang H., Fu S.
Composites Part B: Engineering, 2019
6.
Hybrid phthalonitrile‐based materials with advanced mechanical and nuclear shielding performances
Derradji M., Zegaoui A., Medjahed A., Liu W., Henniche A.
Polymer Composites, 2019
7.
Effects of 3-aminophenylacetylene on mechanical properties at elevated temperatures of carbon fiber/phthalonitrile composites
Sun B., Shi H., Yang K., Lei Q., Li Y., Fu Y., Hu N., Guo Y., Zhou H., Fu S.
Composites Communications, 2020
8.
Bulgakov B.A., Belsky K.S., Nechausov S.S., Afanaseva E.S., Babkin A.V., Kepman A.V., Avdeev V.V.
Mendeleev Communications, 2018
9.
Phthalonitrile-carbon fiber composites
Sastri S.B., Armistead J.P., Keller T.M.
Polymer Composites, 1996
12.
Phthalonitrile-Terminated Silicon-Containing Oligomers: Synthesis, Polymerization, and Properties
Wang G., Han Y., Guo Y., Wang S., Sun J., Zhou H., Zhao T.
Industrial & Engineering Chemistry Research, 2019
13.
10.1016/j.mencom.2020.11.036_bib0065
Laskoski
Fire and Polymers IV: Materials and Concepts for Hazard Prevention, 2005
14.
Synthesis and properties of a bisphenol A based phthalonitrile resin
Laskoski M., Dominguez D.D., Keller T.M.
Journal of Polymer Science, Part A: Polymer Chemistry, 2005
15.
Oligomeric aliphatic-aromatic ether containing phthalonitrile resins
Laskoski M., Neal A., Schear M.B., Keller T.M., Ricks-Laskoski H.L., Saab A.P.
Journal of Polymer Science, Part A: Polymer Chemistry, 2015
16.
Self-catalyzed silicon-containing phthalonitrile resins with low melting point, excellent solubility and thermal stability
Zhang Z., Li Z., Zhou H., Lin X., Zhao T., Zhang M., Xu C.
Journal of Applied Polymer Science, 2014
17.
Low-melting siloxane-bridged phthalonitriles for heat-resistant matrices
Babkin A.V., Zodbinov E.B., Bulgakov B.A., Kepman A.V., Avdeev V.V.
European Polymer Journal, 2015
18.
Dzhevakov P.B., Korotkov R.F., Bulgakov B.A., Babkin A.V., Kepman A.V., Avdeev V.V.
Mendeleev Communications, 2016
19.
Mechanical and physicochemical properties of matrices for fiber reinforced plastics based on low-melting phthalonitrile monomers
Bulgakov B.A., Babkin A.V., Bogolyubov A.A., Afanas’eva E.S., Kepman A.V.
Russian Chemical Bulletin, 2016
20.
Low-melting phthalonitrile thermosetting monomers with siloxane- and phosphate bridges
Bulgakov B.A., Babkin A.V., Dzhevakov P.B., Bogolyubov A.A., Sulimov A.V., Kepman A.V., Kolyagin Y.G., Guseva D.V., Rudyak V.Y., Chertovich A.V.
European Polymer Journal, 2016
21.
Thermally stable phthalonitrile matrixes containing siloxane fragments
Babkin A.V., Zodbinov E.B., Bulgakov B.A., Kepman A.V., Avdeev V.V.
Polymer Science - Series B, 2016
22.
Bulgakov B.A., Sulimov A.V., Babkin A.V., Afanasiev D.V., Solopchenko A.V., Afanaseva E.S., Kepmana A.V., Avdeeva V.V.
Mendeleev Communications, 2017