Department of Physics and Centre for Complexity Science, University of Warwick, Coventry CV4 7AL, United Kingdom.
Proc Natl Acad Sci U S A. 2013 Aug 27;110(35):14174-9. doi: 10.1073/pnas.1308225110. Epub 2013 Aug 12.
Knots and knotted fields enrich physical phenomena ranging from DNA and molecular chemistry to the vortices of fluid flows and textures of ordered media. Liquid crystals provide an ideal setting for exploring such topological phenomena through control of their characteristic defects. The use of colloids in generating defects and knotted configurations in liquid crystals has been demonstrated for spherical and toroidal particles and shows promise for the development of novel photonic devices. Extending this existing work, we describe the full topological implications of colloids representing nonorientable surfaces and use it to construct torus knots and links of type (p,2) around multiply twisted Möbius strips.
纽结和纽结场丰富了物理现象,从 DNA 和分子化学到流体流动的漩涡和有序介质的纹理。液晶为通过控制其特征缺陷来探索这种拓扑现象提供了理想的环境。已经证明胶体在产生缺陷和液晶中的纽结结构方面具有球形和环形粒子的应用,并为开发新型光子器件提供了前景。扩展现有工作,我们描述了代表不可定向表面的胶体的完整拓扑含义,并利用它来构建围绕多次扭曲的莫比乌斯带的(p,2)类型的环纽结和链接。