Article (Scientific journals)
Monolayers of hard rods on planar substrates. II. Growth
Klopotek, Miriam; Hansen-Goos, Hendrik; Dixit, Mohit et al.
2017In Journal of Chemical Physics, 146, p. 084903
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Abstract :
[en] Growth of hard-rod monolayers via deposition is studied in a lattice model using rods with discrete orientations and in a continuum model with hard spherocylinders. The lattice model is treated with kinetic Monte Carlo simulations and dynamic density functional theory while the continuum model is studied by dynamic Monte Carlo simulations equivalent to diffusive dynamics. The evolution of nematic order (excess of upright particles, “standing-up” transition) is an entropic effect and is mainly governed by the equilibrium solution, rendering a continuous transition [Paper I, M. Oettel et al., J. Chem. Phys. 145, 074902 (2016)]. Strong non-equilibrium effects (e.g., a noticeable dependence on the ratio of rates for translational and rotational moves) are found for attractive substrate potentials favoring lying rods. Results from the lattice and the continuum models agree qualitatively if the relevant characteristic times for diffusion, relaxation of nematic order, and deposition are matched properly. Applicability of these monolayer results to multilayer growth is discussed for a continuum-model realization in three dimensions where spherocylinders are deposited continuously onto a substrate via diffusion.
Research center :
ULHPC - University of Luxembourg: High Performance Computing
Disciplines :
Physics
Author, co-author :
Klopotek, Miriam
Hansen-Goos, Hendrik
Dixit, Mohit ;  University of Luxembourg > Faculty of Science, Technology and Communication (FSTC) > Physics and Materials Science Research Unit
Schilling, Tanja
Schreiber, Frank
Oettel, Martin
External co-authors :
yes
Language :
English
Title :
Monolayers of hard rods on planar substrates. II. Growth
Publication date :
February 2017
Journal title :
Journal of Chemical Physics
ISSN :
1089-7690
Publisher :
American Institute of Physics, New York, United States - New York
Volume :
146
Pages :
084903
Peer reviewed :
Peer Reviewed verified by ORBi
Focus Area :
Physics and Materials Science
FnR Project :
FNR9476226 - Film Growth, 2014 (01/07/2015-30/06/2018) - Jan Peter Felix Lagerwall
Funders :
University of Luxembourg - UL
Available on ORBilu :
since 14 March 2017

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