Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization
N P Yevlampieva
1
,
O S Vezo
1
,
M. A. Slyusarenko
1
,
A S Gubarev
1
,
Yu A Simonova
2
,
I. V. Eremenko
2
,
M A Topchiy
2
,
Publication type: Journal Article
Publication date: 2023-08-31
scimago Q3
wos Q4
SJR: 0.244
CiteScore: 1.9
Impact factor: 1.1
ISSN: 0965545X, 15556107, 17571820
Materials Chemistry
Polymers and Plastics
Abstract
Protonated diallylammonium polymers are special among cationic polyelectrolytes, due to a series of properties including high antimicrobial activity, for example, towards Mycobacterium tuberculosis. The polymers samples should be characterized properly for their practical application. In this study, protonated secondary polydiallylamines based on diallylammonium trifluoroacetate have been synthesized via radical reversible addition−fragmentation chain-transfer polymerization in the presence of 2-[(ethoxycarbonothioyl)sulfanyl]acetic acid. The NMR spectroscopy data have shown that the macromolecules contain the dithiocarbonyl terminal groups enhancing the polymer solubility in nonaqueous media, for instance, in methanol. The obtained polymers have been investigated by means of hydrodynamics and dynamic light scattering methods; molecular mass and hydrodynamic parameters of the macromolecules have been determined. Comparison of the polymers with similar ones synthesized via conventional radical polymerization and bearing terminal vinyl groups has revealed the independence of their hydrodynamic properties in 1.0 mol/L NaCl on the synthesis method and the terminal groups structure at М > 8 × 103, thus allowing the application of the scaling relationships for the diallylammonium polymers to determine the molecular mass, irrespectively on the preparation methods.
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Yevlampieva N. P. et al. Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization // Polymer Science - Series A. 2023. Vol. 65. No. 4. pp. 303-311.
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Yevlampieva N. P., Vezo O. S., Slyusarenko M. A., Gubarev A. S., Simonova Yu. A., Eremenko I. V., Topchiy M. A., Timofeeva L. M. Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization // Polymer Science - Series A. 2023. Vol. 65. No. 4. pp. 303-311.
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TY - JOUR
DO - 10.1134/s0965545x2370102x
UR - https://doi.org/10.1134/s0965545x2370102x
TI - Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization
T2 - Polymer Science - Series A
AU - Yevlampieva, N P
AU - Vezo, O S
AU - Slyusarenko, M. A.
AU - Gubarev, A S
AU - Simonova, Yu A
AU - Eremenko, I. V.
AU - Topchiy, M A
AU - Timofeeva, L M
PY - 2023
DA - 2023/08/31
PB - Pleiades Publishing
SP - 303-311
IS - 4
VL - 65
SN - 0965-545X
SN - 1555-6107
SN - 1757-1820
ER -
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@article{2023_Yevlampieva,
author = {N P Yevlampieva and O S Vezo and M. A. Slyusarenko and A S Gubarev and Yu A Simonova and I. V. Eremenko and M A Topchiy and L M Timofeeva},
title = {Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization},
journal = {Polymer Science - Series A},
year = {2023},
volume = {65},
publisher = {Pleiades Publishing},
month = {aug},
url = {https://doi.org/10.1134/s0965545x2370102x},
number = {4},
pages = {303--311},
doi = {10.1134/s0965545x2370102x}
}
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MLA
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Yevlampieva, N. P., et al. “Molecular Properties of Protonated Diallylammonium Polymers Synthesized via Reversible Addition−Fragmentation Chain-Transfer Polymerization.” Polymer Science - Series A, vol. 65, no. 4, Aug. 2023, pp. 303-311. https://doi.org/10.1134/s0965545x2370102x.