9,738 research outputs found
Electronic transport properties of intermediately coupled superconductors: PdTe2 and Cu0.04PdTe2
We have investigated the electrical resistivity, Seebeck coefficient and
thermal conductivity of PdTe2 and 4% Cu intercalated PdTe2 compounds.
Electrical resistivity for the compounds shows Bloch-Gruneisen type linear
temperature (T) dependence for 100 K < T < 480 K, and Fermi liquid behavior (~
T^2) below 50 K. Seebeck coefficient data exhibit strong competition between
Normal (N) and Umklapp (U) scattering processes at low T. Though our results
indicate the transfer of charge carriers to PdTe2 upon Cu intercalation, it is
difficult to discern any change in the Fermi surface of the compound by
Nordheim-Gorter plots. The estimated Fermi energies of the compounds are quite
comparable to good metals Cu, Ag and Au. The low T, thermal conductivity (k) of
the compounds is strongly dominated by the electronic contribution, and
exhibits a rare linear T dependence below 10 K. However, high T, k(T) shows
usual 1/T dependence, dominated by U scattering process. The electron phonon
coupling parameters, estimated from the low T, specific heat data and first
principle electronic structure calculations suggest that PdTe2 and Cu0.04PdTe2
are intermediately coupled superconductors.Comment: 18 pages, 6 figure
Superconductivity at 5.2 K in ZrTe3 polycrystals and the effect of Cu, Ag intercalation
We report the occurrence of superconductivity in polycrystalline samples of
ZrTe3 at 5.2 K temperature at ambient pressure. The superconducting state
coexists with the charge density wave (CDW) phase, which sets in at 63K. The
intercalation of Cu or Ag, does not have any bearing on the superconducting
transition temperature but suppresses the CDW state. The feature of CDW anomaly
in these compounds is clearly seen in the DC magnetization data. Resistivity
data is analysed to estimate the relative loss of carriers and reduction in the
nested Fermi surface area upon CDW formation in the ZrTe3 and the intercalated
compounds.Comment: 5 pages, 8 figure
Nature of the spiral state, electric polarisation and magnetic transitions in Sr-doped YBaCuFeO: A first-principles study
Contradictory results on the ferroelectric response of type II multiferroic
YBaCuFeO, in its incommensurate phase, has of late, opened up a lively
debate. There are ambiguous reports on the nature of the spiral magnetic state.
Using first-principles DFT calculations for the parent compound within
LSDA+U+SO approximation, the multiferroic response and the nature of spiral
state is revealed. The helical spiral is found to be more stable below the
transition temperature as spins prefer to lie in ab plane. The
Dzyaloshinskii-Moriya (DM) interaction and the spin current mechanism were
earlier invoked to account for the electric polarisation in this system.
However, the DM interaction is found to be absent, spin current mechanism is
not valid in the helical spiral state and there is no electric polarisation
thereof. These results are in good agreement with the recent single-crystal
data. We also investigate the magnetic transitions in
YBaSrCuFeO for the entire range of doping. The
exchange interactions are estimated as a function of doping and a quantum Monte
Carlo (QMC) calculation on an effective spin Hamiltonian shows that the
paramagnetic to commensurate phase transition temperature increases with doping
till and decreases beyond. Our observations are consistent with
experimental findings.Comment: 8 pages, 7 figure
Transport and Magnetic Properties of FexVse2 (x = 0 - 0.33)
We present our results of the effect of Fe intercalation on the structural,
transport and magnetic properties of 1T-VSe2. Intercalation of iron, suppresses
the 110K charge density wave (CDW) transition of the 1T-VSe2. For the higher
concentration of iron, formation of a new kind of first order transition at
160K takes place, which go on stronger for the 33% Fe intercalation.
Thermopower of the FexVSe2 compounds (x = 0 - 0.33), however do not show any
anomaly around the transition. The intercalation of Fe does not trigger any
magnetism in the weak paramagnetic 1T-VSe2, and Fe is the low spin state of
Fe3+.Comment: 7 pages, 8 figures, 2 table
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