Zhou Yanli, Zhang Chunhong, Huang Jiahe, Liu Lijia, Bai Jianwei, Li Junqing, Satoh Toshifumi, Okamoto Yoshio
Key Laboratory of Superlight Materials and Surface Technology, Ministry of Education, College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin 150001, P. R. China.
Research Center for Biomass Materials, Tianfu Yongxing Laboratory, Chengdu 610213, Sichuan P. R. China.
Anal Chem. 2024 Feb 6;96(5):2078-2086. doi: 10.1021/acs.analchem.3c04755. Epub 2024 Jan 23.
A series of optically active helical poly(phenylacetylene)s (, , , , and ) bearing different chain lengths of -proline oligopeptide in the side chains were obtained by polymerizing the corresponding novel phenylacetylene monomers. The monomer adopted a -rich helix structure when the -proline oligopeptide chain length was longer, according to the optical activities and 2D-NMR analysis. The helical structure could be maintained and significantly influenced the polymers' helical conformation by introducing the -proline oligopeptide to the pendants. By the way, the morphology of was observed by atomic force microscope (AFM) on highly oriented pyrolytic graphite (HOPG), and the information on the helix direction, pitch, and chain arrangement was obtained. Also, the chiral separation properties of these polymer-based chiral stationary phases (CSPs) were investigated using high-performance liquid chromatography (HPLC). The poly(phenylacetylene)s showed enhanced enantioseparation properties toward various racemates depending on the longer chain length of the -proline oligopeptide in the pendants and the positive synergy between the helical backbone and helical side chains. Particularly, showed comparable or even superior enantioseparation properties for racemates 2 and 9 to four commercial columns (Daicel Chiralpak or Chiralcel AD, AS, OD, and OT), indicating that these poly(phenylacetylene)-based CSPs have potential practical values. This work presented here provides inspiration for the further development of CSPs based on a new paradigm.
通过使相应的新型苯乙炔单体聚合,得到了一系列侧链带有不同链长的脯氨酸寡肽的旋光性螺旋聚(苯乙炔)(、、、和)。根据旋光性和二维核磁共振分析,当脯氨酸寡肽链长较长时,单体呈现富含脯氨酸的螺旋结构。通过将脯氨酸寡肽引入侧链,可以维持螺旋结构并显著影响聚合物的螺旋构象。顺便说一下,在高度取向的热解石墨(HOPG)上用原子力显微镜(AFM)观察了的形态,并获得了关于螺旋方向、螺距和链排列的信息。此外,还使用高效液相色谱(HPLC)研究了这些基于聚合物的手性固定相(CSP)的手性分离性能。聚(苯乙炔)对各种外消旋体表现出增强的对映体分离性能,这取决于侧链中脯氨酸寡肽的较长链长以及螺旋主链和螺旋侧链之间的正协同作用。特别是,对于外消旋体2和9,表现出与四种商业柱(大赛璐手性派克或手性cel AD、AS、OD和OT)相当甚至更优的对映体分离性能,表明这些基于聚(苯乙炔)的CSP具有潜在的实用价值。本文介绍的这项工作为基于新范式的CSP的进一步发展提供了灵感。