scholarly journals Extremely anisotropic suppression of huge enhancement of electrical resistivity by magnetic field inα-R2S3(R= Sm, Dy)

2018 ◽  
Vol 969 ◽  
pp. 012124
Author(s):  
S Ebisu ◽  
T Era ◽  
Q Guo ◽  
M Miyazaki
2012 ◽  
Vol 90 (12) ◽  
pp. 1209-1221 ◽  
Author(s):  
A.K. Patidar ◽  
R.K. Pensia ◽  
V. Shrivastava

The problem of radiative instability of homogeneous rotating partially ionized plasma incorporating viscosity, porosity, and electron inertia in the presence of a magnetic field is investigated. A general dispersion relation is obtained using normal mode analysis with the help of relevant linearized perturbation equations of the problem. The modified Jeans criterion of instability is obtained. The conditions of Jeans instabilities are discussed in the different cases of interest. It is found that the simultaneous effect of viscosity, rotation, finite conductivity, and porosity of the medium does not essentially change the Jeans criterion of instability. It is also found that the presence of arbitrary radiative heat-loss function and thermal conductivity modified the conditions of Jeans instability for longitudinal propagation. It is found that, for longitudinal propagation, the conditions of radiative instability are independent of magnetic field, viscosity, rotation, finite electrical resistivity, and electron inertia, but for the transverse mode of propagation it depends upon finite electrical resistivity and strength of magnetic field and is independent of viscosity, electron inertia, and rotation. From the curves we find that viscosity has a stabilizing effect on the growth rate of instability but the thermal conductivity and density-dependent heat-loss function has a destabilizing effect on the instability growth rate.


2000 ◽  
Vol 281-282 ◽  
pp. 926-927 ◽  
Author(s):  
T Akazawa ◽  
H Ikeda ◽  
N Ozawa ◽  
H Kouno ◽  
R Yoshizaki

2014 ◽  
Vol 975 ◽  
pp. 116-121
Author(s):  
Bruna da Costa Andrade ◽  
José Cleverton da Conceição Passos ◽  
Marcelo Andrade Macedo

Samples of CayFe12-yO19 (0 ≤ y ≤ 1.0) were prepared by a proteic sol–gel process with hematite phase and clusters of M-type calcium hexaferrite. Impedance analysis showed that the resistivity increased with calcium concentration in the 0.0 < y ≤ 0.2 range, but decreased for y > 0.2. The saturation of the electrical resistivity occurred at 7.5 × 106 Ω·cm for Ca0.9Fe11.1O19. The plot of magnetization as a function of the magnetic field showed high values of saturation magnetization (40 emu/g) with low remanence (6.7 emu/g) and coercive field (320 Oe).


1976 ◽  
Vol 31 (2) ◽  
pp. 212
Author(s):  
Constantin Papastaikoudis

Abstract The electrical resistivity of thin single crystal aluminium samples has been measured in a transverse magnetic field at 4.2 K. The magnetoresistance shows Sondheimer and mag-netic breakdown oscillations.


Nanophotonics ◽  
2019 ◽  
Vol 8 (10) ◽  
pp. 1847-1854 ◽  
Author(s):  
Gaspar Armelles ◽  
Luca Bergamini ◽  
Nerea Zabala ◽  
María Ujué González ◽  
Fernando García ◽  
...  

AbstractWe present magnetic field induced modulation of the optical response of slit plasmonic metasurfaces fabricated out of giant magnetoresistance/spintronic materials in the 2–17 μm spectral range of the spectrum. The modulation of the slit plasmonic modes is due to the modification of the electrical resistivity (and, in turn, of the optical constants) induced by the application of an external magnetic field. This modulation is found to continuously increase both with the slit concentration and with the slit resonance wavelength, with a prospective further increase for wavelengths of up to 60–80 μm. The direct fabrication and implementation of the modulation setup opens a competitive route for the development of active plasmonic metasurfaces in a wide spectral range.


2017 ◽  
Vol 2017 (3) ◽  
pp. 175-178 ◽  
Author(s):  
M. A. Borovykh ◽  
O. A. Chikova ◽  
V. S. Tsepelev ◽  
V. V. V’yukhin

1995 ◽  
Vol 206-207 ◽  
pp. 515-518 ◽  
Author(s):  
Gendo Oomi ◽  
Tomoko Kagayama ◽  
Kazutaka Nishimura ◽  
S.W. Yun ◽  
Yoshichika Ōnuki

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