Department of Chemical Engineering, National Tsing Hua University, Hsinchu 30013, Taiwan.
Department of Chemical Engineering, National Chung Cheng University, Chia-Yi 62142, Taiwan.
Proc Natl Acad Sci U S A. 2019 Mar 5;116(10):4080-4089. doi: 10.1073/pnas.1812356116. Epub 2019 Feb 14.
We explore the generality of the influence of segment chirality on the self-assembled structure of achiral-chiral diblock copolymers. Poly(cyclohexylglycolide) (PCG)-based chiral block copolymers (BCPs*), poly(benzyl methacrylate)--poly(d-cyclohexylglycolide) (PBnMA-PDCG) and PBnMA--poly(l-cyclohexyl glycolide) (PBnMA-PLCG), were synthesized for purposes of systematic comparison with polylactide (PLA)-based BCPs*, previously shown to exhibit chirality transfer from monomeric unit to the multichain domain morphology. Opposite-handed PCG helical chains in the enantiomeric BCPs* were identified by the vibrational circular dichroism (VCD) studies revealing transfer from chiral monomers to chiral intrachain conformation. We report further VCD evidence of chiral interchain interactions, consistent with some amounts of handed skew configurations of PCG segments in a melt state packing. Finally, we show by electron tomography [3D transmission electron microscope tomography (3D TEM)] that chirality at the monomeric and intrachain level ultimately manifests in the symmetry of microphase-separated, multichain morphologies: a helical phase (H*) of hexagonally, ordered, helically shaped tubular domains whose handedness agrees with the respective monomeric chirality. Critically, unlike previous PLA-based BCPs, the lack of a competing crystalline state of the chiral PCGs allowed determination that H is an equilibrium phase of chiral PBnMA-PCG. We compared different measures of chirality at the monomer scale for PLA and PCG, and argued, on the basis of comparison with mean-field theory results for chiral diblock copolymer melts, that the enhanced thermodynamic stability of the mesochiral H* morphology may be attributed to the relatively stronger chiral intersegment forces, ultimately tracing from the effects of a bulkier chiral side group on its main chain.
我们探讨了手性段手性对非手性-手性两亲嵌段共聚物自组装结构影响的普遍性。为了与先前表现出单体单元向多链畴形态的手性传递的基于聚乳酸 (PLA) 的嵌段共聚物进行系统比较,我们合成了基于聚(环己基乙二醇酯) (PCG) 的手性嵌段共聚物 (BCPs),聚(苯甲基甲基丙烯酸酯) - 聚 (d-环己基乙二醇酯) (PBnMA-PDCG) 和 PBnMA-聚 (l-环己基乙二醇酯) (PBnMA-PLCG)。振动圆二色性 (VCD) 研究表明,对映体 BCP中的相反手性 PCG 螺旋链通过手性单体到手性链内构象的转移得到了识别。我们进一步通过 VCD 证据表明存在手性链间相互作用,这与手性 PCG 段在熔融状态下堆积时存在一定数量的手性倾斜构象一致。最后,我们通过电子断层摄影术 [三维透射电子显微镜断层摄影术 (3D TEM)] 表明,单体和链内水平的手性最终表现在多链形态的微相分离对称性中:一种螺旋相 (H),其具有六边形、有序、螺旋形管状畴,其手性与各自单体的手性一致。关键是,与以前的基于 PLA 的 BCP不同,手性 PCG 缺乏竞争的晶态使得可以确定 H是手性 PBnMA-PCG 的平衡相。我们比较了 PLA 和 PCG 在单体尺度上的不同手性测量方法,并基于与手性两亲嵌段共聚物熔体的平均场理论结果的比较,认为介手性 H*形态的热力学稳定性增强可归因于相对较强的手性链间力,最终可以追溯到手性侧基对其主链的影响。