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New dialkylenetriamine zinc complexes as highly efficient ROP catalysts

Ekaterina Aleksandrovna Kuchuk 1
Ekaterina Aleksandrovna Kuchuk
Badma Nikolaevich Mankaev 1
Badma Nikolaevich Mankaev
Kirill Vladimirovich Zaitsev 1
Kirill Vladimirovich Zaitsev
Andrei Viktorovich Churakov 2
Andrei Viktorovich Churakov
Yurii Fedorovich Oprunenko 1
Yurii Fedorovich Oprunenko
Galina Stepanovna Zaitseva 1
Galina Stepanovna Zaitseva
Sergey Sergeevich Karlov 1
Sergey Sergeevich Karlov
Published 2020-08-31
CommunicationVolume 30, Issue 5, 596-598
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Kuchuk E. A. et al. New dialkylenetriamine zinc complexes as highly efficient ROP catalysts // Mendeleev Communications. 2020. Vol. 30. No. 5. pp. 596-598.
GOST all authors (up to 50) Copy
Kuchuk E. A., Mankaev B. N., Serova V. A., Zaitsev K. V., Churakov A. V., Oprunenko Y. F., Zaitseva G. S., Karlov S. S. New dialkylenetriamine zinc complexes as highly efficient ROP catalysts // Mendeleev Communications. 2020. Vol. 30. No. 5. pp. 596-598.
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TY - JOUR
DO - 10.1016/j.mencom.2020.09.014
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.09.014
TI - New dialkylenetriamine zinc complexes as highly efficient ROP catalysts
T2 - Mendeleev Communications
AU - Kuchuk, Ekaterina Aleksandrovna
AU - Mankaev, Badma Nikolaevich
AU - Serova, Valeriia Andreevna
AU - Zaitsev, Kirill Vladimirovich
AU - Churakov, Andrei Viktorovich
AU - Oprunenko, Yurii Fedorovich
AU - Zaitseva, Galina Stepanovna
AU - Karlov, Sergey Sergeevich
PY - 2020
DA - 2020/08/31
PB - Mendeleev Communications
SP - 596-598
IS - 5
VL - 30
ER -
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@article{2020_Kuchuk,
author = {Ekaterina Aleksandrovna Kuchuk and Badma Nikolaevich Mankaev and Valeriia Andreevna Serova and Kirill Vladimirovich Zaitsev and Andrei Viktorovich Churakov and Yurii Fedorovich Oprunenko and Galina Stepanovna Zaitseva and Sergey Sergeevich Karlov},
title = {New dialkylenetriamine zinc complexes as highly efficient ROP catalysts},
journal = {Mendeleev Communications},
year = {2020},
volume = {30},
publisher = {Mendeleev Communications},
month = {Aug},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.09.014},
number = {5},
pages = {596--598},
doi = {10.1016/j.mencom.2020.09.014}
}
MLA
Cite this
MLA Copy
Kuchuk, Ekaterina Aleksandrovna, et al. “New dialkylenetriamine zinc complexes as highly efficient ROP catalysts.” Mendeleev Communications, vol. 30, no. 5, Aug. 2020, pp. 596-598. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2020.09.014.

Keywords

1,4,n-triazaalkanes
amines
biodegradable polymers
diamides
ɛ-caprolactone
organofluorine compounds
ring-opening polymerization
trimethylene carbonate
zinc complex

Abstract

The reaction of Zn[N(SiMe3)2]2 with N-alkyl-N-[ω- (pentafluorophenylamino)alkyl]-N-[2-(pentafluorophenylamino) ethyl]amines afforded new bicyclic zinc complexes. The complexes initiate ring-opening polymerization of ɛ-caprolactone and trimethylene carbonate to give the corresponding polymers with high molecular weight and satisfactory degree of polymerization.

References

1.
10.1016/j.mencom.2020.09.014_bib0005
Siracusa
Technol., 2008
2.
Biodegradable and biocompatible polymers for tissue engineering application: a review
Asghari F., Samiei M., Adibkia K., Akbarzadeh A., Davaran S.
Artificial Cells, Nanomedicine and Biotechnology, 2016
7.
Synthesis, characterization, and catalytic activity of sodium ketminiate complexes toward the ring-opening polymerization of l-lactide
Chuang W., Huang Y., Chen Y., Lin Y., Lu W., Lai Y., Chiang M.Y., Hsu S.C., Chen H.
RSC Advances, 2016
8.
Aluminum chelates supported by β-quinolyl enolate ligands: synthesis and ROP of ε-CL
Wang P., Hao X., Cheng J., Chao J., Chen X.
Dalton Transactions, 2016
9.
Nifant’ev I.E., Shlyakhtin A.V., Bagrov V.V., Ezhov R.N., Lozhkin B.A., Churakov A.V., Ivchenko P.V.
Mendeleev Communications, 2018
10.
Egiazaryan T.A., Makarov V.M., Moskalev M.V., Razborov D.A., Fedushkin I.L.
Mendeleev Communications, 2019
12.
Macrocycle-based oligo- and polylactides: synthesis and prospects of application
Stoikov I.I., Padnya P.L., Mostovaya O.A., Vavilova A.A., Gorbachuk V.V., Shurpik D.N., Evtugin G.A.
Russian Chemical Bulletin, 2019
13.
Dubey S., Abhyankar H., Marchante V., Brighton J., Blackburn K.
International Research Journal of Pure and Applied Chemistry, 2016
14.
Dizinc Lactide Polymerization Catalysts: Hyperactivity by Control of Ligand Conformation and Metallic Cooperativity
Thevenon A., Romain C., Bennington M.S., White A.J., Davidson H.J., Brooker S., Williams C.K.
Angewandte Chemie - International Edition, 2016
15.
Complexes of Mg, Ca and Zn as homogeneous catalysts for lactide polymerization
Wheaton C.A., Hayes P.G., Ireland B.J.
Dalton Transactions, 2009
16.
Why So Slow? Mechanistic Insights from Studies of a Poor Catalyst for Polymerization of ε-Caprolactone
Stasiw D.E., Mandal M., Neisen B.D., Mitchell L.A., Cramer C.J., Tolman W.B.
Inorganic Chemistry, 2016
17.
Single-Site Catalysts for Ring-Opening Polymerization:  Synthesis of Heterotactic Poly(lactic acid) from rac-Lactide
Cheng M., Attygalle A.B., Lobkovsky E.B., Coates G.W.
Journal of the American Chemical Society, 1999
20.
Steric and chelating ring concerns on the l-lactide polymerization by asymmetric β-diketiminato zinc complexes
Chuang W., Chen H., Chen W., Chang H., Chiang M.Y., Chen H., Hsu S.C.
RSC Advances, 2016
21.
Heterolepic β ‐Ketoiminate Zinc Phenoxide Complexes as Efficient Catalysts for the Ring Opening Polymerization of Lactide
Ghosh S., Schäfer P.M., Dittrich D., Scheiper C., Steiniger P., Fink G., Ksiazkiewicz A.N., Tjaberings A., Wölper C., Gröschel A.H., Pich A., Herres‐Pawlis S., Schulz S.
ChemistryOpen, 2019
22.
Novel derivatives of hypervalent germanium: Synthesis, structure, and stability
Lermontova E.K., Huan M., Churakov A.V., Howard J.A., Zabalov M.V., Karlov S.S., Zaitseva G.S.
Dalton Transactions, 2009
23.
Molybdenum, Tungsten, and Rhenium d2 Complexes That Contain the [(C6F5NCH2CH2)2NMe]2- Ligand
24.
A short history of SHELX
Sheldrick G.M.
Acta Crystallographica Section A Foundations of Crystallography, 2007
25.
The Electronegativity of Groups
Huheey J.E.
The Journal of Physical Chemistry, 1965
26.
The structural characteristics of organozinc complexes incorporating N,N′-bidentate ligands
Birch S.J., Boss S.R., Cole S.C., Coles M.P., Haigh R., Hitchcock P.B., Wheatley A.E.
Dalton Transactions, 2004
27.
Zinc bis-pyrrolide-imine complexes: Synthesis, structure and application in ring-opening polymerization of rac-lactide
Caovilla A., Penning J.S., Pinheiro A.C., Hild F., Stieler R., Dagorne S., Casagrande O.L., Gil M.P.
Journal of Organometallic Chemistry, 2018
29.
Synthesis and Crystal Structures of Dinuclear Zinc Complexes with the 3,5-Bis(pyridine-2-yl)pyrazolato Ligand
Kloubert T., Görls H., Westerhausen M.
Zeitschrift fur Anorganische und Allgemeine Chemie, 2010
30.
3-Phenyl-5-(2-pyridyl)pyrazolato Complexes of Lithium, Magnesium, Calcium, and Zinc
Kloubert T., Görls H., Westerhausen M.
Zeitschrift fur Naturforschung - Section B Journal of Chemical Sciences, 2012
31.
Probing the Steric and Electronic Characteristics of a New Bis-Pyrrolide Pincer Ligand
Komine N., Buell R.W., Chen C., Hui A.K., Pink M., Caulton K.G.
Inorganic Chemistry, 2014
33.
Diamagnetic 8-amidoquinoline and 8-(trialkylsilylamido)quinoline complexes of divalent nickel and zinc
Malassa A., Koch C., Stein-Schaller B., Görls H., Friedrich M., Westerhausen M.
Inorganica Chimica Acta, 2008
34.
Encapsulating zinc(ii) within a hydrophobic cavity
Miller D.L., Lu C.C.
Dalton Transactions, 2012
35.
Synthesis of Oligomeric Zinc Complexes with Bicyclic and Acyclic Guanidinate Ligands
Neuhäuser C., Reinmuth M., Kaifer E., Himmel H.
European Journal of Inorganic Chemistry, 2012
40.
Synthesis and characterizations of bis(phenoxy)‐amine tin(II) complexes for ring‐opening polymerization of lactide
Praban S., Yimthachote S., Kiriratnikom J., Chotchatchawankul S., Tantirungrotechai J., Phomphrai K.
Journal of Polymer Science, Part A: Polymer Chemistry, 2019