Acrylate-macromonomers and telechelics of PBA by merging biphasic SET-LRP of BA, chain extension with MA and biphasic esterification
Literature Information
Tong Liu, Marina Galià, Virgil Percec
Single electron transfer-living radical polymerization (SET-LRP) provides excellent control over polymer chain-end functionality. The chain ends of poly(butyl acrylate) (PBA), prepared by biphasic SET-LRP in an acetone/water mixture using a non-activated Cu(0) wire/TREN/Cu(II)X2 catalytic system, could not be reacted quantitatively using a biphasic reaction mixture of potassium acrylate (KA) in acetonitrile at 75 °C. This procedure was previously successfully applied to poly(methyl acrylate). The PBA chain ends showed lower reactivity due to their higher hydrophobicity and sterically hindered nature. However, the chain extension of α-bromo and α,ω-dibromo PBA with a few monomeric units of MA dramatically changed the reactivity of PBA. Thus, acrylate-functionalized macromonomers and telechelics based on PBA could be successfully prepared by merging biphasic SET-LRP, chain extension with MA and heterogeneous esterification with KA in acetonitrile at 75 °C. This three step methodology, that can be simplified by carrying out two or even three steps in one pot, is expected to become a general route for the preparation of acrylate-functionalized polyacrylates derived from monomers with hydrophobic and sterically hindered substituents.
Related Literature
A new understanding of the photocatalytic mechanism of the direct Z-scheme g-C3N4/TiO2 heterostructure
Bei Cheng
DOI: 10.1039/C6CP06147H
Specific effects of monovalent counterions on the structural and interfacial properties of dodecyl sulfate monolayers
Daniel T. Allen, Yussif Saaka, Luis Carlos Pardo, M. Jayne Lawrence, Christian D. Lorenz
DOI: 10.1039/C6CP05714D
The combined effect of mechanical strain and electric field cycling on the ferroelectric performance of P(VDF-TrFE) thin films on flexible substrates and underlying mechanisms
Deepa Singh, Deepak, Ashish Garg
DOI: 10.1039/C6CP02740G
Control of morphology and defect density in zinc oxide for improved dye-sensitized solar cells
Seul Ah Kim, Muhammad Awais Abbas, Lanlee Lee, Byungwuk Kang, Hahkjoon Kim
DOI: 10.1039/C6CP04204J
Oxygen diffusion and surface exchange in the mixed conducting oxides SrTi1−yFeyO3−δ
Veronika Metlenko, WooChul Jung, Sean R. Bishop, Roger A. De Souza
DOI: 10.1039/C6CP05756J
Is kinetic polymer arrest very specific to multiwalled carbon nanotubes?
Priti Xavier, Keerthi M. Nair, Lasitha K., Suryasarathi Bose
DOI: 10.1039/C6CP04303H
Experimental, theoretical and computational investigation of the inelastic neutron scattering spectrum of a homonuclear diatomic molecule in a nearly spherical trap: H2@C60
Salvatore Mamone, Mónica Jiménez-Ruiz, Mark R. Johnson, Stéphane Rols, Anthony J. Horsewill
DOI: 10.1039/C6CP06059E
Light-induced charge separation in a P3HT/PC70BM composite as studied by out-of-phase electron spin echo spectroscopy
Mikhail N. Uvarov, Edward J. Reijerse
DOI: 10.1039/C6CP05389K
Lipid molecules can induce an opening of membrane-facing tunnels in cytochrome P450 1A2
Petr Jeřábek, Jan Florián
DOI: 10.1039/C6CP03692A
Theoretical characterization of the conformational features of unnatural oligonucleotides containing a six nucleotide genetic alphabet
Wenjuan Wang, Xiehuang Sheng, Shaolong Zhang, Fang Huang, Chuanzhi Sun, Jianbiao Liu, Dezhan Chen
DOI: 10.1039/C6CP05594J
You might also like
How is Ethyl 4-chlorothieno[2,3-b]pyridine-5-carboxylate (CAS: 59713-58-5) typically synthesized?
Ethyl 4-chlorothieno[2,3-b]pyridine-5-carboxylate (CAS: 59713-58-5) can be synth...
What regulatory guidelines apply to 5-Methyl-1H-indole-3-carbaldehyde (CAS: 52562-50-2)?
5-Methyl-1H-indole-3-carbaldehyde (CAS: 52562-50-2) is subject to various regula...
What are the physical and chemical properties of (1,3-Dimethyl-2,4-dioxo-1,2,3,4-tetrahydro-5-pyrimidinyl)boronic acid (CAS: 223418-73-3)?
(1,3-Dimethyl-2,4-dioxo-1,2,3,4-tetrahydro-5-pyrimidinyl)boronic acid is a white...
How should waste containing Sulfocostunolide A (CAS: 1016983-51-9) be handled?
Waste containing Sulfocostunolide A (CAS: 1016983-51-9) should be handled with c...
What precautions should be taken when handling Murraxocin (CAS: 88478-44-8)?
When handling Murraxocin (CAS: 88478-44-8), ensure proper personal protective eq...
What are the physical and chemical properties of Formvar (CAS: 63148-64-1)?
Formvar (CAS: 63148-64-1) is an alkyd resin characterized by a high molecular we...
Is (S)-4-benzyl-2-((benzyloxy)methyl)morpholine (CAS: 205242-66-6) safe?
(S)-4-benzyl-2-((benzyloxy)methyl)morpholine is generally safe when handled with...
What industries use Methyl 1-(5-bromo-2-pyrimidinyl)cyclopropanecarboxylate (CAS: 1447607-69-3)?
Methyl 1-(5-bromo-2-pyrimidinyl)cyclopropanecarboxylate (CAS: 1447607-69-3) is p...
Is 2-Methyl-1-phenyl-1-propanamine hydrochloride (CAS: 24290-47-9) safe?
2-Methyl-1-phenyl-1-propanamine hydrochloride (CAS: 24290-47-9) is generally con...
How is 3-(4-Bromophenyl)-2-methylpropanoic acid (CAS: 66735-01-1) typically synthesized?
3-(4-Bromophenyl)-2-methylpropanoic acid is synthesized through a multi-step pro...
Source Journal
Polymer Chemistry

Polymer Chemistry welcomes submissions in all areas of polymer science that have a strong focus on macromolecular chemistry. Manuscripts may cover a broad range of fields, yet no direct application focus is required.












![2-Methyl-2-propanyl 1,6-diazaspiro[3.4]octane-6-carboxylate structure 2-Methyl-2-propanyl 1,6-diazaspiro[3.4]octane-6-carboxylate structure](https://static.chemtradehub.com/structs/115/1158749-79-1-81ee.webp)

