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Beilstein J. Nanotechnol. 2026, 17, 292–302, doi:10.3762/bjnano.17.20
Figure 1: (a) Normalized resistive transitions and (b) μ0Hc2(T) for the NbRe/Au and NbRe/Py bilayers. The red...
Figure 2: I–V curves of (a) NbRe/Au and (b) NbRe/Py bilayers at t ≈ 0.5 in different magnetic fields from 3 m...
Figure 3: Magnetic field dependence for the critical current density at t ≈ 0.5 of NbRe/Au (a) and NbRe/Py (b...
Figure 4: Dissipated power at the instability point as a function of the magnetic field at t ≈ 0.5 for NbRe/A...
Figure 5: Vortex critical velocity as a function of the magnetic field for NbRe/Au and NbRe/Py at t ≈ 0.5. Th...
Beilstein J. Nanotechnol. 2023, 14, 45–51, doi:10.3762/bjnano.14.5
Figure 1: Resistive transition in zero magnetic field of the NbRe (black squares) and NbReN (red circles) mic...
Figure 2: (a) Temperature dependence of the resistance of the NbRe microstrip in various magnetic fields in t...
Figure 3: (a, b) H–T phase diagram of (a) the NbRe and (b) the NbReN microstrip. Black squares and red circle...
Figure 4: (a, b) Temperature dependence of the perpendicular upper critical field of (a) the NbRe and (b) the...