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Light-induced phase transitions of colloidal monolayers with crystalline order
Author(s) -
Lamiss Zaidouny,
Thomas Bohlein,
Roland Roth,
Clemens Bechinger
Publication year - 2013
Publication title -
soft matter
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.99
H-Index - 170
eISSN - 1744-6848
pISSN - 1744-683X
DOI - 10.1039/c3sm50945a
Subject(s) - colloid , materials science , colloidal crystal , lattice constant , bromobenzene , monolayer , refractive index , phase (matter) , optical tweezers , condensed matter physics , debye length , molecular physics , chemical physics , lattice (music) , hexagonal lattice , square lattice , optics , nanotechnology , chemistry , physics , optoelectronics , diffraction , ion , biochemistry , organic chemistry , antiferromagnetism , acoustics , ising model , catalysis
We experimentally study the phase behavior of a charge-stabilized two-dimensional colloidal crystal which is subjected to a one-dimensional periodic light field. Such light fields are created by a scanned optical line tweezer which allows the variation of the periodicity without optical realignments. In order to realize a wide range of line spacings relative to the lattice constant, we use a suspension of silica particles in bromobenzene. This colloidal system has a Debye screening length of about 4.6 μm which results in the formation of crystals with lattice constants up to 20 μm. Because the refractive index of bromobenzene is larger than that of the colloids, optical gradient forces lead to the attraction of particles at regions where the intensity is smallest. Depending on the depth and periodicity of the optical potential, we observe the light-induced assembly of colloids into triangular, rhombic and square phases.

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