在醇类和非极性溶剂混合物中显示 LCST 型相分离的具有半刚性聚合物骨架的酚醛树脂

IF 2.5 4区 化学 Q3 POLYMER SCIENCE
Natsuki Inaba, Koki Takasu, Keitaro Matsuoka, Kazuki Sada
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引用次数: 0

摘要

低临界溶液温度(LCST)型热响应聚合物的研究主要集中在具有柔性骨架的聚合物上,如乙烯基聚合物,而刚性聚合物由于其溶解度低而很少被研究。尽管已经报道了一些水系统的分子设计,但由于在低温下难以达到可溶状态,有机介质中的分子设计仍然不清楚。先前的研究表明,有机介质中lcst型相分离的分子设计基于通过氢键的构建/解构来控制溶剂化,但只研究了柔性乙烯基聚合物,如聚(4-羟基苯乙烯)。在本研究中,旨在将分子设计扩展到刚性酚醛树脂TD-2131和KA-1160,这些树脂在主链上含有酚基。TD-2131和KA-1160在1-醇(如1-己醇和1-辛醇)作为氢键溶剂和甲苯或环己烷作为非极性溶剂以适当的摩尔比混合的混合物中表现出lcst型相分离。在1-醇和非极性溶剂的混合物中,短链1-醇需要较高的摩尔比,而长链1-醇需要较低的摩尔比才能诱导lst型相分离。这些溶解度趋势反映了在聚(4-羟基苯乙烯)中观察到的情况,表明分子设计既适用于柔性聚合物骨架,也适用于刚性聚合物骨架。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Phenolic Resins with Semi-Rigid Polymer Backbones Exhibiting LCST-Type Phase Separations in the Mixtures of Alcohols and Non-Polar Solvents

Phenolic Resins with Semi-Rigid Polymer Backbones Exhibiting LCST-Type Phase Separations in the Mixtures of Alcohols and Non-Polar Solvents

Research on lower critical solution temperature (LCST)-type thermo-responsive polymers has predominantly focused on those with flexible backbones, such as vinyl polymers, while rigid polymers have rarely been investigated due to their low solubility. Although some molecular designs for aqueous systems have been reported, molecular designs in organic media remain unclear due to the difficulty in achieving soluble states at low temperatures. The previous study demonstrates the molecular design for LCST-type phase separation in organic media based on the control of the solvation through the construction/deconstruction of hydrogen bonds, but only flexible vinyl polymers such as poly(4-hydroxystyrene) are investigated. In this study, it is aimed to extend the molecular design to rigid phenolic resins, TD-2131 and KA-1160, which contain phenolic groups in the main chain. TD-2131 and KA-1160 exhibited LCST-type phase separation in the mixture of 1-alcohol such as 1-hexanol and 1-octanol as hydrogen-bonding solvents and toluene or cyclohexane as non-polar solvents in appropriate mixing molar ratios. In mixtures of 1-alcohols and non-polar solvents, shorter-chain 1-alcohols necessitate higher molar ratios, while longer-chain 1-alcohols require lower ratios to induce LCST-type phase separations. These solubility trends mirror that observed in poly(4-hydroxystyrene), suggesting that the molecular design applies to both flexible and rigid polymer backbones.

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来源期刊
Macromolecular Chemistry and Physics
Macromolecular Chemistry and Physics 化学-高分子科学
CiteScore
4.30
自引率
4.00%
发文量
278
审稿时长
1.4 months
期刊介绍: Macromolecular Chemistry and Physics publishes in all areas of polymer science - from chemistry, physical chemistry, and physics of polymers to polymers in materials science. Beside an attractive mixture of high-quality Full Papers, Trends, and Highlights, the journal offers a unique article type dedicated to young scientists – Talent.
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