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Janusz Tobola

Researcher at AGH University of Science and Technology

Publications -  183
Citations -  4453

Janusz Tobola is an academic researcher from AGH University of Science and Technology. The author has contributed to research in topics: Electronic structure & Fermi level. The author has an hindex of 32, co-authored 175 publications receiving 3895 citations. Previous affiliations of Janusz Tobola include Nancy-Université & École nationale supérieure des mines de Nancy.

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Electronic structure and magnetism of Fe 3-x V x X (X=Si, Ga, and Al) alloys by the KKR-CPA method

TL;DR: In this article, the authors presented first principles charge and spin-consistent electronic structure computations on the Heusler-type disordered alloys for three different metalloids.
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Electronic phase diagram of the XTZ (X=Fe, Co, Ni; T=Ti, V, Zr, Nb, Mn; Z=Sn, Sb) semi-Heusler compounds

TL;DR: In this paper, the general aspects of the electronic structure of the XTZ semi-Heusler systems are discussed using the Korringa-Kohn-Rostoker computations within the LDA framework.
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Crossover from semiconductor to magnetic metal in semi-Heusler phases as a function of valence electron concentration

TL;DR: In this paper, the KKR-CPA results concerning 17 and 19-valence-electron systems correspond well with experimental characteristics, except in the case of CoVSb which KKR calculations predict to be a half-metallic ferromagnet, which conflicts with experimental data.
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Transport in doped skutterudites: Ab initio electronic structure calculations

TL;DR: In this paper, the authors present ab initio calculations of conductivity, thermopower, Lorenz factor, and Hall coefficient for doped cobalt antimony skutterudites which are currently investigated experimentally for their thermoelectric properties.
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Effect of substitutions and defects in half-Heusler FeVSb studied by electron transport measurements and KKR-CPA electronic structure calculations

TL;DR: The structural and electron transport properties of the pure and the half-Heusler phases have been investigated using x-ray diffraction, Mossbauer spectroscopy, and Electron Probe Microscopy Analysis as well as resistivity, thermopower, and Hall effect measurements in the $80--900\phantom{\rule{0.3em}{0ex}}\mathrm{K}$ temperature range.