2,130 research outputs found
Nonequilibrium phonon mean free paths in anharmonic chains
Harnessing the power of low-dimensional materials in thermal applications
calls for a solid understanding of the anomalous thermal properties of such
systems. We analyze thermal conduction in one-dimensional systems by
determining the frequency-dependent phonon mean free paths (MFPs) for an
anharmonic chain, delivering insight into the diverging thermal conductivity
observed in computer simulations. In our approach, the MFPs are extracted from
the length-dependence of the spectral heat current obtained from nonequilibrium
molecular dynamics simulations. At low frequencies, the results reveal a
power-law dependence of the MFPs on frequency, in agreement with the diverging
conductivity and the recently determined equilibrium MFPs. At higher
frequencies, however, the nonequilibrium MFPs consistently exceed the
equilibrium MFPs, highlighting the differences between the two quantities.
Exerting pressure on the chain is shown to suppress the mean free paths and to
generate a weaker divergence of MFPs at low frequencies. The results deliver
important insight into anomalous thermal conduction in low-dimensional systems
and also reveal differences between the MFPs obtained from equilibrium and
nonequilibrium simulations.Comment: 8 pages, 7 figures, minor changes to v
Role of anharmonic phonon scattering in the spectrally decomposed thermal conductance at planar interfaces
Detailed understanding of vibrational heat transfer mechanisms between solids
is essential for the efficient thermal engineering and control of
nanomaterials. We investigate the frequency dependence of anharmonic scattering
and interfacial thermal conduction between two acoustically mismatched solids
in planar contact by calculating the spectral decomposition of the heat current
flowing through an interface between two materials. The calculations are based
on analyzing the correlations of atomic vibrations using the data extracted
from non-equilibrium molecular dynamics simulations. Inelastic effects arising
from anharmonic interactions are shown to significantly facilitate heat
transfer between two mass-mismatched face-centered cubic lattices even at
frequencies exceeding the cut-off frequency of the heavier material due to (i)
enhanced dissipation of evanescent vibrational modes and (ii)
frequency-doubling and frequency-halving three-phonon energy transfer processes
at the interface. The results provide substantial insight into interfacial
energy transfer mechanisms especially at high temperatures, where inelastic
effects become important and other computational methods are ineffective.Comment: minor changes to v
On Transients in Detached Bridgman Growth
In detached Bridgman growth, a gap exists between the growing crystal and the crucible wall. According to crystal shape stability theory, only specific gap widths will be dynamically stable. Beginning with a crystal diameter that differs from stable conditions, the transient crystal growth process is analyzed. The transient shapes are calculated assuming that the growth angle is constant. Anisotropy and dynamic contact angle effects are considered. In microgravity, dynamic stability depends only on capillary effects and is decoupled from heat transfer. However, heat transfer will influence the crystal-melt interface shape. The local angles and the crystal-melt-vapor triple junction are analyzed and the applicability of the Herring formula is discussed. A potential microgravity experiment is proposed which would enhance our understanding of the detached growth dynamic stability problem
Flow Transitions in a Rotating Magnetic Field
Critical Rayleigh numbers have been measured in a liquid metal cylinder of finite height in the presence of a rotating magnetic field. Several different stability regimes were observed, which were determined by the values of the Rayleigh and Hartmann numbers. For weak rotating magnetic fields and small Rayleigh numbers, the experimental observations can be explained by the existence of a single non-axisymmetric meridional roll rotating around the cylinder, driven by the azimuthal component of the magnetic field. The measured dependence of rotational velocity on magnetic field strength is consistent with the existence of laminar flow in this regime
Tris(1,3-dichloro-2-propyl) phosphate disrupts dorsoventral patterning in zebrafish embryos.
Tris(1,3-dichloro-2-propyl) phosphate (TDCIPP) is a high-production volume organophosphate flame retardant widely used within the United States. Within zebrafish, initiation of TDCIPP exposure at 0.75 h post-fertilization (hpf) results in genome-wide alterations in methylation during cleavage (2 hpf) as well as epiboly delay or arrest (at higher concentrations) during late-blastula and early-gastrula (4-6 hpf). To determine whether these TDCIPP-induced effects were associated with impacts on the transcriptome, embryos were exposed to vehicle (0.1% DMSO) or 2 µM TDCIPP from 0.75 hpf to 6 hpf, and total RNA was extracted from triplicate embryo pools per treatment and hybridized onto duplicate Affymetrix Zebrafish Gene 1.0 ST Arrays per RNA sample. Based on transcriptome-wide profiling, TDCIPP resulted in a significant impact on biological processes involved in dorsoventral patterning and bone morphogenetic protein (BMP) signaling. Consistent with these responses, TDCIPP exposure also resulted in strongly dorsalized embryos by 24 hpf-a phenotype that mimicked the effects of dorsomorphin, a potent and selective BMP inhibitor. Moreover, the majority of dorsalized embryos were preceded by epiboly arrest at 6 hpf. Our microarray data also revealed that the expression of sizzled (szl)-a gene encoding a secreted Frizzled-related protein that limits BMP signaling-was significantly decreased by nearly 4-fold at 6 hpf. Therefore, we used a splice-blocking morpholino to test the hypothesis that knockdown of szl phenocopies TDCIPP-induced delays in epiboly progression. Interestingly, contrary to our hypothesis, injection of szl MOs did not affect epiboly progression but, similar to chordin (chd) morphants, resulted in mildly ventralized embryos by 24 hpf. Overall, our findings suggest that TDCIPP-induced epiboly delay may not be driven by decreased szl expression, and that TDCIPP-induced dorsalization may-similar to dorsomorphin-be due to interference with BMP signaling during early zebrafish development
Shape Evolution of Detached Bridgman Crystals Grown in Microgravity
Detached (or dewetted) Bridgman crystal growth defines that process in which a gap exists between a growing crystal and the crucible wall. In microgravity, the parameters that influence the existence of a stable gap are the growth angle of the solidifying crystal, the contact angle between the melt and the crucible wall, and the pressure difference across the meniscus. During actual crystal growth, the initial crystal radius will not have the precise value required for stable detached growth. Beginning with a crystal diameter that differs from stable conditions, numerical calculations are used to analyze the transient crystal growth process. Depending on the initial conditions and growth parameters, the crystal shape will either evolve towards attachment at the crucible wall, towards a stable gap width, or inwards towards eventual collapse of the meniscus. Dynamic growth stability is observed only when the sum of the growth and contact angles exceeds 180 degrees
Semiconductor crystal growth in crossed electric and magnetic fields: Center Director's Discretionary Fund
A unique growth cell was designed in which crossed electric and magnetic fields could be separately or simultaneously applied during semiconductor crystal growth. A thermocouple was inserted into an InSb melt inside the growth cell to examine the temperature response of the fluid to applied electromagnetic fields. A static magnetic field suppressed time-dependent convection when a destabilizing thermal field was applied. The simultaneous application of electric and magnetic fields resulted in forced convection in the melt. The InSb ingots grown in the cell were polycrystalline. An InGaSb crystal, 0.5 cm in diameter and 23-cm long, was grown without electromagnetic fields applied. The axial composition results indicated that complete mixing in the melt occurred for this large aspect ratio
Crystal Growth of Germanium-Silicon Alloys on the ISS
A series of Ge(1-x)Si(x) crystal growth experiments are planned to be conducted in the Low Gradient Furnace (LGF) onboard the International Space Station. The experiments are part of the investigation "Influence of Containment on the Growth of Silicon-Germanium" (ICESAGE). The primary objective of the research is to determine the influence of containment on the processing-induced defects and impurity incorporation in germanium-silicon alloy crystals. A comparison will be made between crystals grown by the normal and "detached" Bridgman methods and the ground-based float zone technique. Crystals grown without being in contact with a container have superior quality to otherwise similar crystals grown in direct contact with a container, especially with respect to impurity incorporation, formation of dislocations, and residual stress in crystals. "Detached" or "dewetted" Bridgman growth is similar to regular Bridgman growth in that most of the melt is in contact with the crucible wall, but the crystal is separated from the wall by a small gap, typically of the order of 10-100 microns. Long duration reduced gravity is essential to test the proposed theory of detached growth. Detached growth requires the establishment of a meniscus between the crystal and the ampoule wall. This meniscus can exist over a much larger range of processing parameters in microgravity and the meniscus is more stable under microgravity conditions. The plans for the flight experiments will be described
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