Kim Dongwook, Matsuoka Hideki, Saruwatari Yoshiyuki
Department of Polymer Chemistry , Kyoto University , Kyoto 615-8510 , Japan.
Osaka Organic Chemical Industries Ltd. , 7-20 Azuchi-Machi, 1-Chome , Chuo-ku , Osaka 541-0052 , Japan.
Langmuir. 2019 Feb 5;35(5):1590-1597. doi: 10.1021/acs.langmuir.8b03319. Epub 2019 Jan 8.
Ionic diblock copolymers having sulfobetaine, poly(sodium styrenesulfonate)- b- poly(sulfopropyl dimethylammonium propylacrylamide) (PSSNa- b-PSPP), and poly[3-(methacrylamido)propyl trimethylammonium chloride])- b-poly(sulfobetaine) (PMAPTAC- b-PSPP) were synthesized by reversible addition-fragmentation chain transfer (RAFT) polymerization. Polysulfobetaine has the temperature responsivity of the upper critical solution temperature (UCST) type. However, sulfobetaine/PSSNa and sulfobetaine/PMAPTAC with block ratios of 1:1.8 (36- b-66) and 1:1.3 (50- b-66), respectively, did not show any temperature responsivity. This is probably due to the interaction between sulfobetaine and ionic polymer (anionic or cationic) to form some complex. Therefore, we investigated the effect of the block ratio on the temperature response and interaction between sulfobetaine and ionic polymers. The UCST behavior of the block copolymer composed of a sulfobetaine chain and ionic chain was investigated by changing the block ratio by turbidimetry. PSSNa- b-PSPP and PMAPTAC- b-PSPP with block ratios of 1:42.5 (6:255) and 1:4 (16:61), respectively, showed temperature responsivity. The expression of temperature responsivity was found to be very sensitive to the chain length of the ionic chain block. The temperature responsivity was considered to disappear because of the interaction between the sulfobetaine chain and the ionic chain. The interaction was investigated by adding the ionic polymer to the sulfobetaine homopolymer. UCST behavior was confirmed by adding 0.1% PSSNa and 1% PMAPTAC, respectively. The results suggested that the sulfobetaine chain and the ionic chain interacted with each other and that PSSNa was more sensitive than PMAPTAC. In addition, it was confirmed by a H NMR measurement that the sulfobetaine chain and ionic chain in the homopolymer mixture system and a block copolymer interact with each other.
通过可逆加成-断裂链转移(RAFT)聚合反应合成了含有磺基甜菜碱的离子型二嵌段共聚物,即聚(苯乙烯磺酸钠)-b-聚(磺丙基二甲基丙烯酰胺丙基丙烯酰胺)(PSSNa-b-PSPP)和聚[3-(甲基丙烯酰胺基)丙基三甲基氯化铵]-b-聚(磺基甜菜碱)(PMAPTAC-b-PSPP)。聚磺基甜菜碱具有上临界溶液温度(UCST)型的温度响应性。然而,磺基甜菜碱/PSSNa和磺基甜菜碱/PMAPTAC的嵌段比分别为1:1.8(36-b-66)和1:1.3(50-b-66)时,未表现出任何温度响应性。这可能是由于磺基甜菜碱与离子聚合物(阴离子或阳离子)之间相互作用形成了某种络合物。因此,我们研究了嵌段比对温度响应以及磺基甜菜碱与离子聚合物之间相互作用的影响。通过比浊法改变嵌段比,研究了由磺基甜菜碱链和离子链组成的嵌段共聚物的UCST行为。嵌段比分别为1:42.5(6:255)和1:4(16:61)的PSSNa-b-PSPP和PMAPTAC-b-PSPP表现出温度响应性。发现温度响应性的表现对离子链段的链长非常敏感。由于磺基甜菜碱链与离子链之间的相互作用,温度响应性被认为消失了。通过向磺基甜菜碱均聚物中添加离子聚合物来研究这种相互作用。分别加入0.1%的PSSNa和1%的PMAPTAC证实了UCST行为。结果表明,磺基甜菜碱链与离子链相互作用,且PSSNa比PMAPTAC更敏感。此外,通过1H NMR测量证实,均聚物混合体系和嵌段共聚物中的磺基甜菜碱链与离子链相互作用。