Merging of cationic RAFT and radical RAFT polymerizations with ring-opening polymerizations for the synthesis of asymmetric ABCD type tetrablock copolymers in one pot
Literature Information
Yuejia Zhu, Luoyu Gao, Zhenjiang Li, Bo Liu, Zhihao Zhang, Haoying Tong, Yuanyuan Qu, Yusheng Quan, Xin Zou, Kai Guo
Olefin monomers are divided into cationically polymerizable ones (monomer A, such as vinyl ethers) and radically polymerizable ones (monomer B, such as acrylates); in parallel, cyclic ester monomers are polymerizable either electrophilically (monomer C, such as lactones) or nucleophilically (monomer D, such as lactides). To address the challenge of polymerizing the distinctive four types of monomers in one pot into ABCD type tetrablock copolymers, we proposed a bifunctional reversible addition–fragmentation chain transfer (RAFT) agent bearing both the RAFT polymerization site and ring-opening polymerization (ROP) site. The RAFT site was able to copolymerize A and B via switching the cationic RAFT polymerization (cRAFT) to radical RAFT polymerization (rRAFT). Subsequently, the ROP site copolymerized C and D by switching the electrophilic ROP to nucleophilic ROP. A general dual-switch strategy of both RAFT and ROP mechanism transitions successfully produced ABCD-type tetrablock quaterpolymers in one pot by sequential monomer feeding. Poly(isobutyl vinyl ether)-b-poly(methyl methacrylate)-b-poly(δ-valerolactone)-b-polylactide (PIBVE-b-PMMA-b-PVL-b-PLA) was synthesized. All synthesized homopolymers and multi-block copolymers exhibited predicted molecular weights and relatively narrow dispersities (Đ ≤ 1.45). The copolymerization strategy paved a new avenue to combine cRAFT, rRAFT and ROPs to copolymerize vinyl and cyclic ester monomers for rational design and precise synthesis of multiblock copolymers with advanced architectures and functionalities.
Related Literature
Design of chiral bifunctional secondary amine catalysts for asymmetric enamine catalysis
Taichi Kano, Keiji Maruoka
DOI: 10.1039/B809301F
Novel highly active FSM-16 supported molybdenum catalyst for hydrotreatment
Shelu Garg, Thallada Bhaskar, Kapil Soni, Gnanamani Muthu Kumaran, Akinori Muto, Yusaku Sakata, Gudimella Murali Dhar
DOI: 10.1039/B809808E
1-Azadienes in cycloaddition and multicomponent reactions towards N-heterocycles
Bas Groenendaal, Eelco Ruijter, Romano V. A. Orru
DOI: 10.1039/B809206K
Heterocirculenes as a new class of organic semiconductors
Fabio Cicoira, Konstantin Yu. Chernichenko, Elizabeth S. Balenkova, Federico Rosei, Valentine G. Nenajdenko, Dmitrii F. Perepichka
DOI: 10.1039/B809259A
Orthogonal or simultaneous use of disulfide and hydrazone exchange in dynamic covalent chemistry in aqueous solution
Zaida Rodriguez-Docampo
DOI: 10.1039/B808725C
A facile approach to fabricate functional 3D macroscopic silica microtube networks using N,N′-methylenediacrylamide organogel as template
Yu Xia, Yu Wang, Kai Chen, Liming Tang
DOI: 10.1039/B811412A
Aqueous-only, pH-induced nanoassembly of dual pKa-driven contraphilic block copolymers
Nam S. Lee, Yali Li, C. Marcus Ruda, Karen L. Wooley
DOI: 10.1039/B810934F
Identification of oligo(p-phenylene vinylene)–naphthalene diimide heterocomplexes by scanning tunneling microscopy and spectroscopy at the liquid–solid interface
Inge De Cat, Cornelia Röger, Cameron C. Lee, Freek J. M. Hoeben, Maarten J. Pouderoijen, Albertus P. H. J. Schenning, Frank Würthner, Steven De Feyter
DOI: 10.1039/B811961A
A total loss of innocence: double ortho-metallation of bis(triphenylphosphano)iminium cation, [N(PPh3)2]+, by tris(η-naphthalene)tantalate(1−)‡
Victor J. Sussman, John E. Ellis
DOI: 10.1039/B811320C
You might also like
What are the main uses of 1H-Indazole-6-carbonitrile (CAS: 141290-59-7)?
1H-Indazole-6-carbonitrile finds applications in pharmaceuticals, where it serve...
How should waste containing Dioctyl (2E)-2-butenedioate (CAS: 2997-85-5) be handled?
Waste containing Dioctyl (2E)-2-butenedioate (CAS: 2997-85-5) should be collecte...
What industries use Sodium [(1,2-benzoxazol-3-ylmethyl)sulfonyl]azanide (CAS: 68291-98-5)?
Sodium [(1,2-benzoxazol-3-ylmethyl)sulfonyl]azanide is primarily used in pharmac...
Are there alternatives to Dimethyl 4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-2,6-pyridinedicarboxylate (CAS: 741709-66-0) in synthesis?
Dimethyl 4-(4,4,5,5-tetramethyl-1,3,2-dioxaborolan-2-yl)-2,6-pyridinedicarboxyla...
How should waste containing 2-Fluoro-6-hydrazinopyridine (CAS: 80714-39-2) be handled?
Waste containing 2-Fluoro-6-hydrazinopyridine (CAS: 80714-39-2) should be manage...
What is 6-Formyl-2-pyridinecarboxylic acid (CAS: 499214-11-8)?
6-Formyl-2-pyridinecarboxylic acid is an organic compound with the molecular for...
What is the market or research trend for 3-(3,4-dimethoxyphenyl)-2,5-dimethyl-N-(2-morpholin-4-ylethyl)pyrazolo[1,5-a]pyrimidin-7-amine (CAS: 900874-91-1)?
Research trends for this compound indicate a focus on its potential applications...
How is 9H-Tribenzo[b,d,f]azepine (CAS: 29875-73-8) typically synthesized?
9H-Tribenzo[b,d,f]azepine is typically synthesized via a multi-step process invo...
How is 1-Cyclopropyl-7-ethoxy-6-fluoro-8-methoxy-4-oxo-1,4-dihydro-3-quinolinecarboxylic acid (CAS: 1797982-51-4) typically synthesized?
1-Cyclopropyl-7-ethoxy-6-fluoro-8-methoxy-4-oxo-1,4-dihydro-3-quinolinecarboxyli...
How should waste containing Methyl 3-oxo-1,2,3,4-tetrahydro-6-quinoxalinecarboxylate (CAS: 671820-52-3) be handled?
Waste containing Methyl 3-oxo-1,2,3,4-tetrahydro-6-quinoxalinecarboxylate (CAS: ...
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.











![4-Penten-1-yl 2-[(2-furylmethyl)(1H-imidazol-1-ylcarbonyl)amino]butanoate structure 4-Penten-1-yl 2-[(2-furylmethyl)(1H-imidazol-1-ylcarbonyl)amino]butanoate structure](https://static.chemtradehub.com/structs/101/101903-30-4-ac34.webp)


