Wykaz publikacji wybranego autora

Józef Korecki, prof. dr hab.

profesor zwyczajny

Wydział Fizyki i Informatyki Stosowanej
WFiIS-kfc, Katedra Fizyki Ciała Stałego


  • 2018

    [dyscyplina 1] dziedzina nauk ścisłych i przyrodniczych / nauki fizyczne


[poprzednia klasyfikacja] obszar nauk ścisłych / dziedzina nauk fizycznych / fizyka


Identyfikatory Autora Informacje o Autorze w systemach zewnętrznych

ORCID: 0000-0003-0964-4155 połącz konto z ORCID

ResearcherID: K-1548-2014

Scopus: 56250820700

PBN: 5e709208878c28a04738ee82

OPI Nauka Polska

System Informacyjny AGH (SkOs)




1
  • Adsorption induced in plane magnetic anisotropy in epitaxial bcc Co/Fe films
2
  • AFM-FM phase transition in ultrathin FeRh and in FeRh/FM (Fe, Co) bilayers on W(110) substrate
3
  • Early stage of essential hypertension monitoring
4
  • Enhancement of perpendicular magnetic anisotropy and its electric field-induced change through interface engineering in Cr/Fe/MgO
5
  • Insight into the synthesis procedure of $Fe^{3+}/TiO_{2}$-based photocatalyst applied in the selective photo-oxidation of benzyl alcohol under sun-imitating lamp
6
  • Interlayer exchange coupling, dipolar coupling and magnetoresistance in Fe/MgO/Fe trilayers with a subnanometer MgO barrier
7
  • LEEM study of high-temperature oxygen structures on W(110) and their transformations
8
  • Magnetic properties of epitaxial CoO/Fe(001) bilayers: the onset of exchange bias as a function of sublayer thickness and temperature
9
  • May $TiO_2$ nanoparticles cause hypertension?
10
  • PEEM/XAS beamline at SOLARIS
11
  • Status and first results of the PEEM/XAS beamline commissioning process
12
  • The influence of very small doses of alpha radiation on the stability of erythrocytes
13
  • The nucleation, growth and thermal stability of iron clusters on a $TiO_{2}(110)$ surface
14
  • Thickness-dependent spin reorientation transition enhanced by perpendicular exchange bias in Co/CoO(111) bilayer
15
  • Towards understanding MgO/Fe interface formation: adsorption of O and Mg atoms on an Fe(001) surface