3,776 research outputs found
Heat Transport in Mesoscopic Systems
Phonon heat transport in mesoscopic systems is investigated using methods
analogous to the Landauer description of electrical conductance. A "universal
heat conductance" expression that depends on the properties of the conducting
pathway only through the mode cutoff frequencies is derived. Corrections due to
reflections at the junction between the thermal body and the conducting bridge
are found to be small except at very low temperatures where only the lowest few
bridge modes are excited. Various non-equilibrium phonon distributions are
studied: a narrow band distribution leads to clear steps in the cooling curve,
analogous to the quantized resistance values in narrow wires, but a thermal
distribution is too broad to show such features.Comment: To be published in Superlattices and Microstructures, special issue
in honor of Rolf Landauer, March 198
Elastic Wave Transmission at an Abrupt Junction in a Thin Plate, with Application to Heat Transport and Vibrations in Mesoscopic Systems
The transmission coefficient for vibrational waves crossing an abrupt
junction between two thin elastic plates of different widths is calculated.
These calculations are relevant to ballistic phonon thermal transport at low
temperatures in mesoscopic systems and the Q for vibrations in mesoscopic
oscillators. Complete results are calculated in a simple scalar model of the
elastic waves, and results for long wavelength modes are calculated using the
full elasticity theory calculation. We suggest that thin plate elasticty theory
provide a useful and tractable approximation to the full three dimensional
geometry.Comment: 35 pages, including 12 figure
Generalized phonon-assisted Zener tunneling in indirect semiconductors with non-uniform electric fields : a rigorous approach
A general framework to calculate the Zener current in an indirect
semiconductor with an externally applied potential is provided. Assuming a
parabolic valence and conduction band dispersion, the semiconductor is in
equilibrium in the presence of the external field as long as the electronphonon
interaction is absent. The linear response to the electron-phonon interaction
results in a non-equilibrium system. The Zener tunneling current is calculated
from the number of electrons making the transition from valence to conduction
band per unit time. A convenient expression based on the single particle
spectral functions is provided, enabling the numerical calculation of the Zener
current under any three-dimensional potential profile. For a one dimensional
potential profile an analytical expression is obtained for the current in a
bulk semiconductor, a semiconductor under uniform field and a semiconductor
under a non-uniform field using the WKB (Wentzel-Kramers-Brillouin)
approximation. The obtained results agree with the Kane result in the low field
limit. A numerical example for abrupt p - n diodes with different doping
concentrations is given, from which it can be seen that the uniform field model
is a better approximation than the WKB model but a direct numerical treatment
is required for low bias conditions.Comment: 29 pages, 7 figure
Understanding and engineering phonon-mediated tunneling into graphene on metal surfaces
Metal-intercalated graphene on Ir(111) exhibits phonon signatures in
inelastic elec- tron tunneling spectroscopy with strengths that depend on the
intercalant. Extraor- dinarily strong graphene phonon signals are observed for
Cs intercalation. Li interca- lation likewise induces clearly discriminable
phonon signatures, albeit less pronounced than observed for Cs. The signal can
be finely tuned by the alkali metal coverage and gradually disappears upon
increasing the junction conductance from tunneling to con- tact ranges. In
contrast to Cs and Li, for Ni-intercalated graphene the phonon signals stay
below the detection limit in all transport ranges. Going beyond the
conventional two-terminal approach, transport calculations provide a
comprehensive understanding of the subtle interplay between the
graphene{electrode coupling and the observation of graphene phonon
spectroscopic signatures
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