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Unconventional structure-assisted optical manipulation of high-index nanowires in liquid crystals
Author(s) -
David Engström,
Michael C. M. Varney,
Martin Persson,
Rahul Trivedi,
Kris A. Bertness,
Mattias Goksör,
Ivan I. Smalyukh
Publication year - 2012
Publication title -
optics express
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.394
H-Index - 271
ISSN - 1094-4087
DOI - 10.1364/oe.20.007741
Subject(s) - thermotropic crystal , materials science , optical tweezers , liquid crystal , optical force , refractive index , optics , rheology , anisotropy , viscoelasticity , scattering , trapping , optoelectronics , chemical physics , molecular physics , composite material , liquid crystalline , chemistry , physics , ecology , biology
Stable optical trapping and manipulation of high-index particles in low-index host media is often impossible due to the dominance of scattering forces over gradient forces. Here we explore optical manipulation in liquid crystalline structured hosts and show that robust optical manipulation of high-index particles, such as GaN nanowires, is enabled by laser-induced distortions in long-range molecular alignment, via coupling of translational and rotational motions due to helicoidal molecular arrangement, or due to elastic repulsive interactions with confining substrates. Anisotropy of the viscoelastic liquid crystal medium and particle shape give rise to a number of robust unconventional trapping capabilities, which we use to characterize defect structures and study rheological properties of various thermotropic liquid crystals.

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