Eur. Phys. J. E 5, 281-293
The elastic anisotropy of nematic elastomers
H. Finkelmann1, A. Greve1 and M. Warner21 Institut für Makromoleculare Chemie, Universität Freiburg, D79104 Freiburg, Germany
2 Cavendish Laboratory, University of Cambridge, Madingley Road, Cambridge CB3 0HE, UK
mw141@cam.ac.uk
(Received 29 September 2000 )
Abstract
We examine the robustness of order in nematic elastomers
under mechanical strains imposed along and perpendicularly to the
director when director rotation is prohibited. In contrast to
electric and magnetic fields applied to conventional nematics,
mechanical fields are shown theoretically and experimentally to
greatly affect the degree of nematic order and related quantities.
Unlike in liquid nematics, one can impose fields perpendicular to the
director, thereby inducing biaxial order which should be susceptible
to experimental detection. Nematic elastomers with unchanging
director and degree of order should theoretically have the same
elastic moduli for longitudinal and transverse extensions. This is
violated when nematic order is permitted to relax in response to
strains. Near the transition we predict the longitudinal modulus to be
smaller than the transverse modulus; at lower temperatures the
converse is true, with a crossover a few degrees below the
transition. The differences are ascribed to the different temperature
dependence of the stiffness of uniaxial and biaxial order. We
synthesised side chain single-crystal nematic polymer networks,
performed DSC, X-ray, birefringence, and thermo-mechanical
characterisations, and then obtained linear moduli from stress-strain
measurements.
61.30.-v - Liquid crystals.
82.70.-y - Disperse systems; complex fluids.
81.40.Jj - Elasticity and anelasticity, stress-strain relations..
© EDP Sciences, Società Italiana di Fisica, Springer-Verlag 2001