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Synthesis of well-defined alkyne terminated poly(N-vinyl caprolactam) with stringent control over the LCST by RAFT

机译:RAFT严格控制LCST的定义明确的炔烃封端的聚(N-乙烯基己内酰胺)

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摘要

The reversible addition-fragmentation chain transfer (RAFT) of N-vinyl caprolactam (NVCL) using two new xanthates with alkyne functionalities is reported. The kinetic data obtained for polymerization of this non-activated monomer using a protected alkyne-terminated RAFT agent (PAT-X1) revealed a linear increase of the polymer molecular weight with the monomer conversion as well as low dispersity (Đ) during the entire course of the polymerization. The system reported here allowed us to enhance the final conversion, diminish Đ and reduce the polymerization temperature compared to the typical values reported in the scarce literature available for the RAFT polymerization of NVCL. The resulting PNVCL was fully characterized using 1H nuclear magnetic resonance (1H NMR), matrix-assisted laser desorption ionization time-of-flight mass spectrometry (MALDI-TOF-MS), Fourier-transform infrared spectroscopy (FTIR) and gel permeation chromatography (GPC) techniques. The temperature-responsive features of PNVCL in aqueous solutions were fully investigated under different conditions using turbidimetry. The presented strategy allows the synthesis of well-defined PNVCL with sharp and reversible phase transition temperatures around 37 °C. By manipulating the polymer molecular weight, or the solution properties, it is possible to tune the PNVCL phase transition. As a proof-of concept, the alkyne functionalized PNVCL was used to afford new linear block copolymers, by reacting with an azide-terminated poly(ethylene glycol) (N3-PEG) through the copper catalyzed azide-alkyne [3+2] dipolar cycloaddition (CuAAC) reaction. The results presented establish a robust system to afford the synthesis of PNCVL with fine tuned characteristics that will enable more efficient exploration of the remarkable potential of this polymer in biomedical applications.
机译:据报道,N-乙烯基己内酰胺(NVCL)的可逆加成-断裂链转移(RAFT)使用了两种具有炔烃功能的新黄药。使用受保护的炔烃封端的RAFT试剂(PAT-X1)聚合该非活化单体的动力学数据显示,在整个过程中,聚合物分子量随单体转化率线性增加,并且分散度低(Đ)聚合。与NVCL的RAFT聚合可用的稀有文献中报道的典型值相比,此处报道的系统使我们能够提高最终转化率,降低Đ并降低聚合温度。使用 1 H核磁共振( 1 H NMR),基质辅助激光解吸电离飞行时间质谱(MALDI-TOF- MS),傅里叶变换红外光谱(FTIR)和凝胶渗透色谱(GPC)技术。使用比浊法在不同条件下充分研究了PNVCL在水溶液中的温度响应特性。提出的策略允许合成清晰明确的PNVCL,并在37°C左右具有尖锐且可逆的相变温度。通过控制聚合物的分子量或溶液的性质,可以调节PNVCL相变。作为证明的概念,炔烃官能化的PNVCL通过与铜端接的叠氮化物-炔烃[3 + 2]双极与叠氮化物封端的聚乙二醇(N3-PEG)反应,用于提供新的线性嵌段共聚物环加成(CuAAC)反应。提出的结果建立了一个强大的系统,可提供具有微调特性的PNCVL合成,这将使该聚合物在生物医学应用中的巨大潜力得到更有效的探索。

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