Tarabukina Elena, Fatullaev Emil, Krasova Anna, Kurlykin Mikhail, Tenkovtsev Andrey, Sheiko Sergei S, Filippov Alexander
Institute of Macromolecular Compounds, Russian Academy of Sciences, 199004 Saint-Petersburg, Russia.
School of Photonics, St. Petersburg National Research University of Information Technologies, Mechanics and Optics, 199004 Saint-Petersburg, Russia.
Polymers (Basel). 2020 Nov 10;12(11):2643. doi: 10.3390/polym12112643.
New thermoresponsive graft copolymers with an aromatic polyester backbone and poly(2-isopropyl-2-oxazoline) (PiPrOx) side chains are synthesized and characterized by NMR and GPC. The grafting density of side chains is 0.49. The molar masses of the graft-copolymer, its backbone, side chains, and the modeling poly-2-isopropyl-2-oxaziline are 74,000, 19,000, 4300, and 16,600 g·mol, respectively. Their conformational properties in nitropropane as well as thermoresponsiveness in aqueous solutions are studied and compared with that of free side chains, i.e., linear PiPrOx with a hydrophobic terminal group. In nitropropane, the graft-copolymer adopts conformation of a 13-arm star with a core of a collapsed main chain and a PiPrOx corona. Similarly, a linear PiPrOx chain protects its bulky terminal group by wrapping around it in a selective solvent. In aqueous solutions at low temperatures, graft copolymers form aggregates due to interaction of hydrophobic backbones, which contrasts to molecular solutions of the model linear PiPrOx. The lower critical solution temperature (LCST) for the graft copolymer is around 20 °C. The phase separation temperatures of the copolymer solution were lower than that of the linear chain counterpart, decreasing with concentration for both polymers.
合成了具有芳族聚酯主链和聚(2-异丙基-2-恶唑啉)(PiPrOx)侧链的新型热响应接枝共聚物,并通过核磁共振(NMR)和凝胶渗透色谱(GPC)对其进行了表征。侧链的接枝密度为0.49。接枝共聚物、其主链、侧链以及模拟聚-2-异丙基-2-恶唑啉的摩尔质量分别为74000、19000、4300和16600 g·mol。研究了它们在硝基丙烷中的构象性质以及在水溶液中的热响应性,并与游离侧链(即带有疏水端基的线性PiPrOx)进行了比较。在硝基丙烷中,接枝共聚物呈现出13臂星形构象,其核心是塌陷的主链,外围是PiPrOx冠层。类似地,线性PiPrOx链在选择性溶剂中通过缠绕其庞大的端基来保护它。在低温水溶液中,接枝共聚物由于疏水主链的相互作用而形成聚集体,这与模型线性PiPrOx的分子溶液形成对比。接枝共聚物的低临界溶液温度(LCST)约为20℃。共聚物溶液的相分离温度低于线性链对应物,两种聚合物的相分离温度均随浓度降低。