Graph explorer

Topological colloids

Abundant in nature, colloids also find increasingly important applications in science and technology, ranging from direct probing of kinetics in crystals and glasses to fabrication of third-generation quantum-dot solar cells. Because naturally occurring colloids have a shape that is typically determined by minimization of interfacial tension (for example, during phase separation) or faceted crystal growth, their surfaces tend to have minimum-area spherical or topologically equivalent shapes such as prisms and irregular grains (all continuously deformable - homeomorphic - to spheres). Although toroidal DNA condensates and vesicles with different numbers of handles can exist and soft matter defects can be shaped as rings and knots, the role of particle topology in colloidal systems remains unexplored. Here we fabricate and study colloidal particles with different numbers of handles and genus g ranging from 1 to 5. When introduced into a nematic liquid crystal - a fluid made of rod-like molecules that spontaneously align along the so-called "director" - these particles induce three-dimensional director fields and topological defects dictated by colloidal topology. Whereas elec

9 nodes8 linksoverview mapTopological colloids
9 nodes8 links
Topological colloids9 visible / 9 total nodes / 29 links
Co-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipCo-authorshipAuthorshipAuthorshipAuthorshipAuthorshipTopic signalAuthorshipAuthorshipAuthorshipWTopological colloidspreprint / 2016ABohdan SenyukResearcherAQingkun LiuResearcherASailing HeResearcherARandall D. KamienResearcherTcond-mat.soft4333 worksARobert B. KusnerResearcherATom C. LubenskyResearcherAIvan I. SmalyukhResearcher
PaperSignal 108 links

Topological colloids

preprint / 2016

Open