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Dynamic phenomena in superconducting oxides measured by ESR

J. V. Acrivos, Lei Chen, C. M. Burch, P. Metcalf, J. M. Honig, R. S. Liu, K. K. Singh

DOI 10.1103/PhysRevB.50.13710 · Physical Review B

T1

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Abstract

Dynamic electron spin resonance (ESR) measurements compare the paramagnetic and antiferromagnetic (AF) properties of superconducting oxides in the range 4 K to room temperature, at 8 MHz and 9.36 GHz. Two are derivatives of YBa2Cu3O7: I: Nd(Nd0.05Ba0.95)2Cu3O7, Tc0=72 K and II: Y0.2Ca0.8Sr2[Cu2(Tl0.5Pb0.5)]O7, Tc0=108 K and two are cases where AF ordering dominates the weak superconductivity: III: NbO1.1, 1.25≤Tc0≤10 K and IV: La2NiO4.00, 70 K ≥Tc0≥40 K. At temperatures 298≥T≥64 K, the ESR absorption by I indicates orthorhombic symmetry. The peaks at gc=2.06, gb=2.13, and ga=2.24 are identified with the presence of 5% Nd3+(4I9/2) in the Ba layer because the characteristic Cu2+ impurity hyperfine structure is absent and the ESR signal disappears several degrees below Tc. Near Tc the ESR absorption is reduced by two orders of magnitude. Proximity effects give rise to interference fringes with period τf(T) independent of the field B and the rate of sweep dBz/dt. ESR is observed below Tc because flux penetrates the superconductor. The temperature dependence of τf leads to an activation energy for the flux motion Ea(I)/R≤16 K and Ea (III)/R≃3 K ≃Tc/4. In the superconducting state a coherent flux expulsion response to a change in Bz from 500 mT to zero is observed in times τr=8 to 10 s. The inverse rate of noise spikes due to flux expulsion, when the samples are cooled through Tc in a magnetic field, varies from τnoise=3.5 s for III to 21 s for IV. The microwave absorption spectra identify three temperature regimes: (i) For 3.5 K <T<Tm≃T*<Tc, superconducting behavior was confirmed by the energy loss near zero magnetic field and the kinetics of high-field noise due to flux expulsion. Near g=2.00 ESR absorption is observed for all materials. A broad absorption near 50 to 100 mT at 9.36 GHz has been attributed to AF resonance. (ii) Tm≃T*≤T≤Tc identifies the range where flux motion gives rise to interference fringes in the ESR absorption. (iii) ESR and AF resonance are observed immediately after warming above Tc.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
Nd(Nd0.05Ba0.95)2Cu3O7

Archive — visibility unverified

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72Pressure not reportedonset
Y0.2Ca0.8Sr2[Cu2(Tl0.5Pb0.5)]O7

Archive — visibility unverified

Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

108Pressure not reportedonset
NbO1.1

Archive — visibility unverified

Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

10Pressure not reportedonset
La2NiO4.00

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Source-occurrence policy only; no material identity or catalogue acceptance is inferred from the formula.

70Pressure not reportedonset

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