We present extensive Molecular Dynamics simulation results for the structure,
static and dynamical response of a droplet of 1000 soft spheres carrying
extended dipoles and confined to spherical cavities of radii R=2.5, 3, and 4
nm embedded in a dielectric continuum of permittivity ϵ′≥1. The
polarisation of the external medium by the charge distribution inside the
cavity is accounted for by appropriate image charges. We focus on the influence
of the external permittivity ϵ′ on the static and dynamic properties
of the confined fluid. The density profile and local orientational order
parameter of the dipoles turn out to be remarkably insensitive to ϵ′.
Permittivity profiles ϵ(r) inside the spherical cavity are calculated
from a generalised Kirkwood formula. These profiles oscillate in phase with the
density profiles and go to a ``bulk'' value ϵb away from the
confining surface; ϵb is only weakly dependent on ϵ′, except
for ϵ′=1 (vacuum), and is strongly reduced compared to the
permittivity of a uniform (bulk) fluid under comparable thermodynamic
conditions.
The dynamic relaxation of the total dipole moment of the sample is found to
be strongly dependent on ϵ′, and to exhibit oscillatory behaviour when
ϵ′=1; the relaxation is an order of magnitude faster than in the bulk.
The complex frequency-dependent permittivity ϵ(ω) is sensitive to
ϵ′ at low frequencies, and the zero frequency limit
ϵ(ω=0) is systematically lower than the ``bulk'' value
ϵb of the static primitivity.Comment: 12 pages including 17 figure