Oligomer preparation from hexane by radical polyaddition with bis(α-trifluoromethyl-β,β-difluorovinyl) terephthalate
Literature Information
Tadashi Narita, Hiroshi Hamana, Satoshi Hattori
Polymer preparation from hexane as a starting material by radical polyaddition with bis(α-trifluoromethyl-β,β-difluorovinyl) terephthalate [CF2C(CF3)OCOC6H4COO–C(CF3)CF2] was investigated to afford polymers bearing a molecular weight of as high as 5.5 × 103, and the polyaddition mechanism including 1,5-radical shift mechanism was proposed.
Related Literature
Tunable dynamic hydrophobic attachment of guest molecules in amphiphilic core–shell polymers
Jörg Reichenwallner, Anja Thomas, Tobias Johann, Holger Frey, Dariush Hinderberger
DOI: 10.1039/C6PY01335J
Effective in situ repair and bacteriostatic material of tooth enamel based on salivary acquired pellicle inspired oligomeric procyanidins
Shuhui Zhang, Libang He, Yinxin Yang, Bo Yang, Yixue Liao, Xinyuan Xu, Jiyao Li, Xiao Yang, Jianshu Li
DOI: 10.1039/C6PY01362G
A new design of ionic complexation and its application for efficient protection of proteins
Qian Yang, Jiaojiao Wu, Zhi Ping Xu, Daoyong Chen
DOI: 10.1039/C4PY01469C
PHEA-g-PDMAEA well-defined graft copolymers: SET-LRP synthesis, self-catalyzed hydrolysis, and quaternization
Fangxu Sun, Haoyu Liu, Xiaoyu Huang
DOI: 10.1039/C6PY01637E
Dual-responsive nanoparticles based on oxidized pullulan and a disulfide-containing poly(β-amino) ester for efficient delivery of genes and chemotherapeutic agents targeting hepatoma
Hemei Wang, Guoyun Wan, Bowei Chen, Hongli Chen, Sipei Zhang, Dan Wang, Qingqing Xiong, Yinsong Wang
DOI: 10.1039/C6PY01664B
A nitrogen-rich, azaindole-based microporous organic network: synergistic effect of local dipole–π and dipole–quadrupole interactions on carbon dioxide uptake
Guanjun Chang, Li Yang, Junxiao Yang, Yawen Huang, Ke Cao, Jiajun Ma, Dapeng Wang
DOI: 10.1039/C6PY01154C
Pyridine type zwitterionic polyurethane with both multi-shape memory effect and moisture-sensitive shape memory effect for smart biomedical application
Shaojun Chen, Zhankui Mei, Huanhuan Ren, Haitao Zhuo, Jianhong Liu, Zaochuan Ge
DOI: 10.1039/C6PY01099G
You might also like
What is 1-(2,4,6-Trifluorophenyl)ethanol (CAS: 1250113-83-7)?
1-(2,4,6-Trifluorophenyl)ethanol is an organic compound with the CAS number 1250...
Is 1-(2,4-Dimethoxybenzyl)-4-(hydroxymethyl)-2-pyrrolidinone (CAS: 919111-34-5) safe?
1-(2,4-Dimethoxybenzyl)-4-(hydroxymethyl)-2-pyrrolidinone (CAS: 919111-34-5) is ...
What are the physical and chemical properties of (7S,15R)-6β,15-Diacetoxy-7α,20-epoxy-7-hydroxykaura-2,16-dien-1-one (CAS: 51419-51-3)?
(7S,15R)-6β,15-Diacetoxy-7α,20-epoxy-7-hydroxykaura-2,16-dien-1-one is a crystal...
What regulatory guidelines apply to rac-ethyl (1r,4r)-4-hydroxycyclohexane-1-carboxylate, trans (CAS: 3618-04-0)?
The compound rac-ethyl (1r,4r)-4-hydroxycyclohexane-1-carboxylate, trans (CAS: 3...
What is the market or research trend for 2-(2,4-Difluorophenoxy)-3-nitropyridine (CAS: 175135-62-3)?
The market for 2-(2,4-Difluorophenoxy)-3-nitropyridine (CAS: 175135-62-3) is cur...
What are the main uses of 6-Diazo-5-oxo-L-norleucine (CAS: 157-03-9)?
The main uses of 6-Diazo-5-oxo-L-norleucine (CAS: 157-03-9) include research in ...
What precautions should be taken when handling 2-Aminoethyl-mono-amide-DOTA-tris(tBu ester) (CAS: 173308-19-5)?
When handling 2-Aminoethyl-mono-amide-DOTA-tris(tBu ester) (CAS: 173308-19-5), i...
How is 5-Methylimidazo[1,2-a]pyridine-3-carbaldehyde (CAS: 178488-37-4) typically synthesized?
5-Methylimidazo[1,2-a]pyridine-3-carbaldehyde (CAS: 178488-37-4) can be synthesi...
Are there alternatives to 2,4,6-Trihydroxyisophthalaldehyde (CAS: 4396-13-8) in synthesis?
There are alternative reagents that can be used in the synthesis of 2,4,6-Trihyd...
What is (2Z)-3-(5-Fluoro-1H-indol-3-yl)-2-sulfanylacrylic acid (CAS: 179461-52-0)?
(2Z)-3-(5-Fluoro-1H-indol-3-yl)-2-sulfanylacrylic acid is a chemical compound wi...
Source Journal
Chemical Communications

ChemComm publishes urgent research which is of outstanding significance and interest to experts in the field, while also appealing to the journal’s broad chemistry readership. Our communication format is ideally suited to short, urgent studies that are of such importance that they require accelerated publication. Our scope covers all topics in chemistry, and research at the interface of chemistry and other disciplines (such as materials science, nanoscience, physics, engineering and biology) where there is a significant novelty in the chemistry aspects. Major topic areas covered include: Analytical Chemistry Catalysis Chemical Biology and medicinal chemistry Computational Chemistry and Machine Learning Energy and sustainable chemistry Environmental Chemistry Green Chemistry Inorganic Chemistry Materials Chemistry Nanoscience Organic Chemistry Physical Chemistry Polymer Chemistry Supramolecular Chemistry














