Martínez-González José A, Zhou Ye, Rahimi Mohammad, Bukusoglu Emre, Abbott Nicholas L, de Pablo Juan J
Institute for Molecular Engineering, The University of Chicago, Chicago, IL 60637;
Department of Chemical and Biological Engineering, University of Wisconsin-Madison, Madison, WI 94720;
Proc Natl Acad Sci U S A. 2015 Oct 27;112(43):13195-200. doi: 10.1073/pnas.1514251112. Epub 2015 Oct 12.
Blue phases of liquid crystals represent unique ordered states of matter in which arrays of defects are organized into striking patterns. Most studies of blue phases to date have focused on bulk properties. In this work, we present a systematic study of blue phases confined into spherical droplets. It is found that, in addition to the so-called blue phases I and II, several new morphologies arise under confinement, with a complexity that increases with the chirality of the medium and with a nature that can be altered by surface anchoring. Through a combination of simulations and experiments, it is also found that one can control the wavelength at which blue-phase droplets absorb light by manipulating either their size or the strength of the anchoring, thereby providing a liquid-state analog of nanoparticles, where dimensions are used to control absorbance or emission. The results presented in this work also suggest that there are conditions where confinement increases the range of stability of blue phases, thereby providing intriguing prospects for applications.
液晶的蓝相代表了独特的物质有序状态,其中缺陷阵列被组织成引人注目的图案。迄今为止,大多数关于蓝相的研究都集中在体相性质上。在这项工作中,我们对限制在球形液滴中的蓝相进行了系统研究。研究发现,除了所谓的蓝相I和蓝相II之外,在受限条件下还会出现几种新的形态,其复杂性随着介质的手性增加而增加,并且其性质可以通过表面锚定来改变。通过模拟和实验相结合,还发现可以通过操纵蓝相液滴的大小或锚定强度来控制蓝相液滴吸收光的波长,从而提供一种纳米颗粒的液态类似物,其中尺寸用于控制吸光度或发射。这项工作中呈现的结果还表明,在某些条件下,限制会增加蓝相的稳定范围,从而为应用提供了有趣的前景。