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Self-disassembly of plant macromolecules

Alexandr Vladimirovich Ponomarev 1
Alexandr Vladimirovich Ponomarev
Boris Grigor'evich Ershov 1
Boris Grigor'evich Ershov
Published 2019-09-04
CommunicationVolume 29, Issue 5, 589-591
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Ponomarev A. V., Ershov B. G. Self-disassembly of plant macromolecules // Mendeleev Communications. 2019. Vol. 29. No. 5. pp. 589-591.
GOST all authors (up to 50) Copy
Ponomarev A. V., Ershov B. G. Self-disassembly of plant macromolecules // Mendeleev Communications. 2019. Vol. 29. No. 5. pp. 589-591.
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TY - JOUR
DO - 10.1016/j.mencom.2019.09.038
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.09.038
TI - Self-disassembly of plant macromolecules
T2 - Mendeleev Communications
AU - Ponomarev, Alexandr Vladimirovich
AU - Ershov, Boris Grigor'evich
PY - 2019
DA - 2019/09/04
PB - Mendeleev Communications
SP - 589-591
IS - 5
VL - 29
ER -
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@article{2019_Ponomarev,
author = {Alexandr Vladimirovich Ponomarev and Boris Grigor'evich Ershov},
title = {Self-disassembly of plant macromolecules},
journal = {Mendeleev Communications},
year = {2019},
volume = {29},
publisher = {Mendeleev Communications},
month = {Sep},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.09.038},
number = {5},
pages = {589--591},
doi = {10.1016/j.mencom.2019.09.038}
}
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Ponomarev, Alexandr Vladimirovich, and Boris Grigor'evich Ershov. “Self-disassembly of plant macromolecules.” Mendeleev Communications, vol. 29, no. 5, Sep. 2019, pp. 589-591. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2019.09.038.

Abstract

Plant macromolecules can be decomposed via a self-disassembly mechanism consisting in the sequential removal of monocyclic fragments from the end of the macromolecule. The radiolytically initiated process is supported by moderate heating. Self-disassembly programs are encoded in the structure of the radical centers.

References

1.
10.1016/j.mencom.2019.09.038_bib0005
Fengel
Wood – Chemistry, Ultrastructure, Reactions, 1984
3.
Electron beam irradiation of cellulose
Driscoll M., Stipanovic A., Winter W., Cheng K., Manning M., Spiese J., Galloway R.A., Cleland M.R.
Radiation Physics and Chemistry, 2009
4.
10.1016/j.mencom.2019.09.038_bib0020
Kuzina
Russ. J. Phys. Chem., 2005
5.
The oxidation and thermal transformations of macrooradicals in gamma irradiated cellulose
Kuzina S.I., Mikhailov A.I.
Russian Journal of Physical Chemistry A, 2006
7.
Chemical Effects of Heat on Cellulose
Golova O.P.
Russian Chemical Reviews, 1975
8.
Electron-beam distillation of natural polymers
Ponomarev A.V., Makarov I.E., Ershov B.G.
Radiation Physics and Chemistry, 2014
10.
Thermopolymerization inhibitors generated via radiolysis of lignin
Gorbarev I.N., Kasterin A.I., Metreveli P.K., Ponomarev A.V.
Journal of Wood Science, 2018
11.
10.1016/j.mencom.2019.09.038_bib0055
Woods
Applied Radiation Chemistry: Radiation Processing, 1994
13.
Pathways for development of a biorenewables industry
Schell C., Riley C., Petersen G.R.
Bioresource Technology, 2008
14.
Cellulose: Fascinating Biopolymer and Sustainable Raw Material
Klemm D., Heublein B., Fink H., Bohn A.
Angewandte Chemie - International Edition, 2005