Ren Liangxuan, Lu Xueting, Li Wen, Yan Jiatao, Whittaker Andrew K, Zhang Afang
International Joint Laboratory of Biomimetic and Smart Polymers, School of Materials Science & Engineering, Shanghai University, 333 Nanchen Road, Shanghai 200444, China.
Australian Institute for Bioengineering and Nanotechnology (AIBN), The University of Queensland, Brisbane, Queensland 4072, Australia.
J Am Chem Soc. 2023 Nov 3. doi: 10.1021/jacs.3c09333.
Dynamic helical polymers can change their helicity according to external stimuli due to the low helix-inversion barriers, while helicity stabilization for polymers is important for applications in chiral recognition or chiral separations. Here, we present a convenient methodology to stabilize dynamic helical conformations of polymers through intramolecular cross-linking. Thermoresponsive dendronized poly(phenylacetylene)s (PPAs) carrying 3-fold dendritic oligoethylene glycol pendants containing cinnamate moieties were synthesized. These polymers exhibit typical features of dynamic helical structures in different solvents, that is, racemic contracted conformations in less polar organic solvents and predominantly one-handed stretched helical conformations in highly polar solvents. This dynamic helicity can be enhanced through selective solvation by increasing the polarity of the organic solvents or simply via their thermally mediated dehydration in water. However, through photocycloaddition of the cinnamate moieties between the neighboring pendants via UV irradiation, these dendronized PPAs adopt stable helical conformations either below or above their phase transition temperatures in water, and their helical conformations can even be retained in less polar organic solvents. Spectroscopic and atomic force microscopy measurements demonstrate that photocycloaddition between the cinnamate moieties occurs on the individual molecular level, and this is found to be helpful in restraining the photodegradation of the PPA backbones. Molecular dynamics simulations reveal that the spatial orientation of the pendants along the rigid polyene backbone is crucial for the photodimerization of cinnamates within one helix pitch.
由于螺旋反转势垒较低,动态螺旋聚合物可根据外部刺激改变其螺旋度,而聚合物的螺旋度稳定化对于手性识别或手性分离应用至关重要。在此,我们提出一种通过分子内交联来稳定聚合物动态螺旋构象的简便方法。合成了带有含肉桂酸酯部分的3倍树枝状低聚乙二醇侧链的热响应性树枝状聚(苯乙炔)(PPA)。这些聚合物在不同溶剂中表现出动态螺旋结构的典型特征,即在极性较小的有机溶剂中为外消旋收缩构象,在高极性溶剂中主要为单手伸展螺旋构象。通过增加有机溶剂的极性或简单地通过它们在水中的热介导脱水进行选择性溶剂化,可以增强这种动态螺旋度。然而,通过紫外光照射使相邻侧链之间的肉桂酸酯部分发生光环化加成反应,这些树枝状PPA在水中低于或高于其相变温度时都采用稳定的螺旋构象,并且它们的螺旋构象甚至可以保留在极性较小的有机溶剂中。光谱和原子力显微镜测量表明,肉桂酸酯部分之间的光环化加成反应发生在单个分子水平上,并且发现这有助于抑制PPA主链的光降解。分子动力学模拟表明,侧链沿刚性多烯主链的空间取向对于一个螺旋间距内肉桂酸酯的光二聚化至关重要。