手性(物理)
化学物理
氢键
单层
胶束
分子间力
分子
螺旋(腹足类)
生物分子
纳米技术
材料科学
化学
结晶学
对称性破坏
手征对称破缺
物理
有机化学
量子力学
Nambu–Jona Lasinio模型
生态学
水溶液
蜗牛
生物
作者
Rongying Liu,Ran Zhang,Xiaoduo Dong,Shuyu Chen,Lei Zhang,Tongfei Shi,Jiayin Yuan,Niklas Hedin,Guosong Chen
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-05-20
卷期号:18 (22): 14367-14376
被引量:3
标识
DOI:10.1021/acsnano.4c00468
摘要
In nature, chirality transfer refines biomolecules across all size scales, bestowing them with a myriad of sophisticated functions. Despite recent advances in replicating chirality transfer with biotic or abiotic building blocks, a molecular understanding of the underlying mechanism of chirality transfer remains a daunting challenge. In this paper, the coassembly of two types of glycopeptide molecules differing in capability of forming intermolecular hydrogen bonds enabled the involvement of discontinuous hydrogen bond, which allowed for a nanoscale chirality transfer from glycopeptide molecules to chiral micelles, yet inhibited the micrometer scale chirality transfer toward helix formation, leading to an achiral transfer from chiral micelles to planar monolayer. Upon stacking the monolayer into a bilayer, the nonsuperimposable front and back faces of the chiral micelles involved in the monolayer ribbons lead to the opposite rotation of two layers toward increasing the continuity of H-bonds. The resultant continuity triggered the symmetry breaking of stacked bilayers and thus reactivated the micrometer-scale chirality transfer toward the final helix. This work delineates a promising step toward a better understanding and replicating the naturally occurring chirality transfer events and will be instructive to future chiral material design.
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