Gradient copolymers of styrene–methyl acrylate and styrene–acrylic acid by organostibine-mediated controlled/living radical polymerization and their glass transition behaviors
Literature Information
Jinping Zhang, Jun Li, Liyan Huang, Zhengping Liu
Gradient copolymers of styrene–methyl acrylate (poly(St-grad-MA)) were synthesized by semi-batch organostibine-mediated controlled/living radical polymerization (SBRP) in bulk at 60 °C. The number-average molecular weights of the copolymers increase linearly with the total conversion, and the polydispersity indices of all the final copolymers are less than 1.20. The relationships of the cumulative composition (Fcum) and instantaneous composition (Finst) with the degree of polymerization demonstrate the formation of different gradient chain structure and composition of copolymers. Furthermore, amphiphilic gradient copolymers of styrene–acrylic acid (poly(St-grad-AA)) with a small amount of residual MA units were achieved through the hydrolysis of poly(St-grad-MA) under basic conditions. The glass transition temperature (Tg) behaviours of poly(St-grad-MA) and poly(St-grad-AA) were compared in detail. Tg values of poly(St-grad-MA) increase with increasing Fcum,St, while poly(St-grad-AA) has the maximum Tg value and both the two kinds of copolymers have the maximum Tg breadth values with Fcum,St range of 0.4–0.5. The Tg breadth values of poly(St-grad-AA) copolymers are larger than that of the corresponding poly(St-grad-MA) due to the more strongly segregating components of St–AA than St–MA. The typical wide Tg breadths of all the copolymers further prove their gradient structures.
Related Literature
Defects in crystalline PVDF: a density functional theory-density functional tight binding study
Saeid Arabnejad, Koichi Yamashita, Sergei Manzhos
DOI: 10.1039/C7CP00510E
On the shuttling mechanism of a chlorine atom in a chloroaluminum phthalocyanine based molecular switch
Huanjun Song, Cenfeng Fu, Na Li, Hao Zhu, Zhantao Peng, Wenhui Zhao, Jingxin Dai, Lingbo Xing, Zhichao Huang, Wei Chen, Yongfeng Wang, Jinlong Yang, Kai Wu
DOI: 10.1039/C7CP03153J
Dark excitons and tunable optical gap in graphene nanodots
Yingjie Zhang, Yang Li
DOI: 10.1039/C7CP04591C
Self-aggregation propensity of the Tat peptide revealed by UV-Vis, NMR and MD analyses
Sara Macchi, Riccardo Nifosì, Sebastiano Di Pietro, Claudia Boccardi, Francesca D'Autilia, Fabio Beltram, Francesco Cardarelli
DOI: 10.1039/C7CP04320A
Thermal compaction of the intrinsically disordered protein tau: entropic, structural, and hydrophobic factors
Anna Battisti, Gabriele Ciasca, Alessandro Grottesi, Alexander Tenenbaum
DOI: 10.1039/C6CP07683A
Dynamics of ethyl cellulose nanoparticle self-assembly at the interface of a nematic liquid crystal droplet
Yining Han, Navid Bizmark, Marios A. Ioannidis
DOI: 10.1039/C7CP04421F
Probing the charge distribution at the electrochemical interface
Yvonne Gründer, Christopher A. Lucas
DOI: 10.1039/C7CP00244K
Photophysical characterization and time-resolved spectroscopy of a anthradithiophene dimer: exploring the role of conformation in singlet fission
Jacob C. Dean, Ruomeng Zhang, Rawad K. Hallani, Ryan D. Pensack, Samuel N. Sanders, Daniel G. Oblinsky, Sean R. Parkin, Luis M. Campos, John E. Anthony, Gregory D. Scholes
DOI: 10.1039/C7CP03774K
From force curves to surface nanomechanical properties
Illia Dobryden, Gen Li, Yunjuan He, Hui Huang, Per-Anders Thorén, David B. Haviland
DOI: 10.1039/C7CP02612A
Membrane interactions and antimicrobial effects of layered double hydroxide nanoparticles
L. Nyström, R. Nordström, Z. P. Xu, M. Davoudi
DOI: 10.1039/C7CP02701J
You might also like
Is 6-(3-Fluorophenyl)picolinic acid (CAS: 887982-40-3) safe?
6-(3-Fluorophenyl)picolinic acid is generally considered safe for laboratory use...
What industries use (3R)-3-Pyrrolidinol (CAS: 2799-21-5)?
(3R)-3-Pyrrolidinol is used in the pharmaceutical industry as a precursor for dr...
What precautions should be taken when handling (4R,5R)-4,5-Diethoxycarbonyl-2,2-dimethyldioxolane (CAS: 59779-75-8)?
When handling (4R,5R)-4,5-Diethoxycarbonyl-2,2-dimethyldioxolane (CAS: 59779-75-...
How is 1-(6-Chloroimidazo[1,2-b]pyridazin-3-yl)ethanone (CAS: 90734-71-7) typically synthesized?
1-(6-Chloroimidazo[1,2-b]pyridazin-3-yl)ethanone is often synthesized via a mult...
What is the market or research trend for N-Ethyl-3,4-dimethylbenzylamine (CAS: 39180-83-1)?
The market for N-Ethyl-3,4-dimethylbenzylamine (CAS: 39180-83-1) remains steady,...
What is Tert-butyl 3-(pyrrolidin-1-yl)azetidine-1-carboxylate (CAS: 1019008-21-9)?
Tert-butyl 3-(pyrrolidin-1-yl)azetidine-1-carboxylate is a chemical compound wit...
What regulatory guidelines apply to 1-Bromo-3-chloro-2,4-dimethoxybenzene (CAS: 1228956-93-1)?
1-Bromo-3-chloro-2,4-dimethoxybenzene (CAS: 1228956-93-1) falls under the classi...
Is 8-Bromo-2-methyl-3,4-dihydroisoquinolin-1(2H)-one (CAS: 1368622-07-4) safe?
The safety of 8-Bromo-2-methyl-3,4-dihydroisoquinolin-1(2H)-one (CAS: 1368622-07...
Is Benzyl [(3S)-2,6-dioxo-3-piperidinyl]carbamate (CAS: 22785-43-9) safe?
Benzyl [(3S)-2,6-dioxo-3-piperidinyl]carbamate is generally safe when handled wi...
How should 1-{[4-(4,4,5,5-Tetramethyl-1,3,2-dioxaborolan-2-yl)phenyl]sulfonyl}pyrrolidine (CAS: 928657-21-0) be stored?
1-{[4-(4,4,5,5-Tetramethyl-1,3,2-dioxaborolan-2-yl)phenyl]sulfonyl}pyrrolidine s...
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-Chloro-3-(diethylcarbamoyl)phenyl]boronic acid structure [4-Chloro-3-(diethylcarbamoyl)phenyl]boronic acid structure](https://static.chemtradehub.com/structs/871/871332-68-2-0e3b.webp)



