281,690 research outputs found
Evolution of magnetic properties in the vicinity of the Verwey transition in Fe3O4 thin films
We have systematically studied the evolution of magnetic properties,
especially the coercivity and the remanence ratio in the vicinity of the Verwey
transition temperature (TV ), of high-quality epitaxial Fe3O4 thin films grown
on MgO (001), MgAl2O4 (MAO) (001), and SrTiO3 (STO) (001) substrates. We
observed rapid change of magnetization, coercivity, and remanence ratio at TV ,
which are consistent with the behaviors of resistivity versus temperature
[\r{ho}(T )] curves for the different thin films. In particular, we found quite
different magnetic behaviors for the thin films onMgOfrom those onMAOand STO,
inwhich the domain size and the strain state play very important roles. The
coercivity is mainly determined by the domain size but the demagnetization
process is mainly dependent on the strain state. Furthermore, we observed a
reversal of remanence ratio at TV with thickness for the thin films grown on
MgO: from a rapid enhancement for 40-nm- to a sharp drop for 200-nm-thick film,
and the critical thickness is about 80 nm. Finally, we found an obvious
hysteretic loop of coercivity (or remanence ratio) with temperature around TV ,
corresponding to the hysteretic loop of the \r{ho}(T ) curve, in Fe3O4 thin
film grown on MgO
Advances on creep–fatigue damage assessment in notched components
In this paper, the extended Direct Steady Cyclic Analysis method (eDSCA) within the Linear Matching Method Framework (LMMF) is combined with the Stress Modified Ductility Exhaustion method and the modified Cavity Growth Factor (CGF) for the first time. This new procedure is used to systematically investigate the effect of several load parameters including load level, load type and creep dwell duration on the creep–fatigue crack initiation process in a notched specimen. The results obtained are verified through a direct comparison with experimental results available in the literature demonstrating great accuracy in predicting the crack initiation life and the driving mechanisms. Furthermore, this extensive numerical study highlighted the possible detrimental effect of the creep–ratchetting mechanism on the crack growth process. This work has a significant impact on structural integrity assessments of complex industrial components and for the better understanding of creep–fatigue lab scale tests
Effect of spin relaxations on the spin mixing conductances for a bilayer structure
The spin current can result in a spin-transfer torque in the
normal-metal(NM)|ferromagnetic-insulator(FMI) or
normal-metal(NM)|ferromagnetic-metal(FMM) bilayer. In the earlier study on this
issue, the spin relaxations were ignored or introduced phenomenologically. In
this paper, considering the FMM or FMI with spin relaxations described by a
non-Hermitian Hamiltonian, we derive an effective spin-transfer torque and an
effective spin mixing conductance in the non-Hermitian bilayer. The dependence
of the effective spin mixing conductance on the system parameters (such as
insulating gap, \textit{s-d} coupling, and layer thickness) as well as the
relations between the real part and the imaginary part of the effective spin
mixing conductance are given and discussed. We find that the effective spin
mixing conductance can be enhanced in the non-Hermitian system. This provides
us with the possibility to enhance the spin mixing conductance
The centripetal force law and the equation of motion for a particle on a curved hypersurface
It is pointed out that the current form of extrinsic equation of motion for a
particle constrained to remain on a hypersurface is in fact a half-finished
version for it is established without regard to the fact that the particle can
never depart from the geodesics on the surface. Once the fact be taken into
consideration, the equation takes that same form as that for centripetal force
law, provided that the symbols are re-interpreted so that the law is applicable
for higher dimensions. The controversial issue of constructing operator forms
of these equations is addressed, and our studies show the quantization of
constrained system based on the extrinsic equation of motion is favorable.Comment: 5 pages, major revisio
Heisenberg equation for a nonrelativistic particle on a hypersurface: from the centripetal force to a curvature induced force
In classical mechanics, a nonrelativistic particle constrained on an
curved hypersurface embedded in flat space experiences the centripetal
force only. In quantum mechanics, the situation is totally different for the
presence of the geometric potential. We demonstrate that the motion of the
quantum particle is "driven" by not only the the centripetal force, but also a
curvature induced force proportional to the Laplacian of the mean curvature,
which is fundamental in the interface physics, causing curvature driven
interface evolution.Comment: 4 page
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