71 research outputs found
Casimir force calculations near the insulator-conductor transition in gold thin films
We present theoretical calculations of the Casimir force for Au thin films
near the insulator-conductor transition that has been observed experimentally.
The dielectric function of the Au thin films is described by the Drude-Smith
model. The parameters needed to model the dielectric function such as the
relaxation time, plasma frequency and the backscattering constant depend on the
thickness of the film. The Casimir force decreases as the film thickness
decreases until it reaches a minimum after which the force increases again. The
minimum of the force coincides with the critical film thickness where a
percolation conductor-insulator occurs.Comment: 5 figures, 1 tabl
Reduction of the Casimir force using aerogels
By using silicon oxide based aerogels we show numerically that the Casimir
force can be reduced several orders of magnitude, making its effect negligible
in nanodevices. This decrease in the Casimir force is also present even when
the aerogels are deposited on metallic substrates. To calculate the Casimir
force we model the dielectric function of silicon oxide aerogels using an
effective medium dielectric function such as the Clausius-Mossotti
approximation. The results show that both the porosity of the aerogel and its
thickness can be use as control parameters to reduce the magnitude of the
Casimir force.Comment: to appear J. Appl. Phy
Variations of the Lifshitz-van der Waals force between metals immersed in liquids
We present a theoretical calculation of the Lifshitz-van der Waals force
between two metallic slabs embedded in a fluid, taking into account the change
of the Drude parameters of the metals when in contact with liquids of different
index of refraction. For the three liquids considered in this work, water,
and the change in the Drude parameters of the metal imply a
difference of up to 15% in the determination of the force at short separations.
These variations in the force is bigger for liquids with a higher index of
refraction.Comment: 2 figures, 1 tabl
Van der Waals torque induced by external magnetic fields
We present a method for inducing and controlling van der Waals torques
between two parallel slabs using a constant magnetic field. The torque is
calculated using the Barash theory of dispersive torques. In III-IV
semiconductors such as , the effect of an external magnetic field is to
induce an optical anisotropy, in an otherwise isotropic material, that will in
turn induce a torque.
The calculations of the torque are done in the Voigt configuration, with the
magnetic field parallel to the surface of the slabs. As a case study we
consider a slab made of calcite and a second slab made of . In the
absence of magnetic field there is no torque. As the magnetic field increases,
the optical anisotropy of increases and the torque becomes different
from zero, increasing with the magnetic field. The resulting torque is of the
same order of magnitude as that calculated using permanent anisotropic
materials when the magnetic fields is close to 1 T.Comment: to appear in Journal of Applied Physic
The role of magnetoplasmons in Casimir force calculations
In this paper we review the role of magneto plasmon polaritons in the Casimir
force calculations. By applying an external constant magnetic field a strong
optical anisotropy is induced on two parallel slabs reducing the reflectivity
and thus the Casimir force. As the external magnetic field increases, the
Casimir force decreases. Thus, with an an external magnetic field the Casimir
force can be controlled.The calculations are done in the Voigt configuration
where the magnetic field is parallel to the slabs. In this configuration the
reflection coefficients for TE and TM modes do not show mode conversion.Comment: contribution to QFEXT09, Norman, Oklahoma 200
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