CAS Key Laboratory of Standardization and Measurement for Nanotechnology, CAS Center for Excellence in Nanoscience, National Center for Nanoscience and Technology, No. 11 ZhongGuanCun BeiYiTiao, Beijing, 100190, China.
University of Chinese Academy of Sciences, 100049, Beijing, China.
Nat Commun. 2018 Jul 3;9(1):2599. doi: 10.1038/s41467-018-05017-7.
The origin of homochirality in life is a fundamental mystery. Symmetry breaking and subsequent amplification of chiral bias are regarded as one of the underlying mechanisms. However, the selection and control of initial chiral bias in a spontaneous mirror symmetry breaking process remains a great challenge. Here we show experimental evidences that laminar chiral microvortices generated within asymmetric microchambers can lead to a hydrodynamic selection of initial chiral bias of supramolecular systems composed of exclusively achiral molecules within milliseconds. The self-assembled nuclei with the chirality sign affected by the shear force of enantiomorphic microvortices are subsequently amplified into almost absolutely chirality-controlled supramolecular gels or nanotubes. In contrast, turbulent vortices in stirring cuvettes fail to select the chirality of supramolecular gels. This study reveals that a laminar chiral microflow can induce enantioselection far from equilibrium, and provides an insight on the origin of natural homochirality.
手性在生命中的起源是一个基本的奥秘。手性偏向的对称性破缺和随后的放大被认为是其中的一个潜在机制。然而,在自发的镜像对称破缺过程中,初始手性偏向的选择和控制仍然是一个巨大的挑战。在这里,我们展示了实验证据,即在非对称微腔中产生的层流手性微涡旋可以在毫秒内导致由纯非手性分子组成的超分子体系的初始手性偏向的流体动力学选择。受手性微涡旋切应力影响的具有手性特征的自组装核随后被放大成几乎完全手性控制的超分子凝胶或纳米管。相比之下,搅拌试管中的湍流涡旋不能对手性超分子凝胶进行选择。这项研究揭示了层流手性微流可以在远离平衡的情况下诱导对映体选择性,并为天然手性的起源提供了新的见解。