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Critical parameters of disordered nanocrystalline superconducting Chevrel-phase PbMo6S8

H. J. Niu, D. P. Hampshire

DOI 10.1103/PhysRevB.69.174503 · Physical Review B

T1

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Abstract

Highly dense structurally disordered nanocrystalline bulk PbMo6S8 samples were fabricated by mechanical milling (MM) and hot isostatic pressing (HIP) at a pressure of 2000 bar and temperature of 800 °C for 8 h. In spite of the lower superconducting transition temperature (TC0.95ρN=12.3K), nanocrystalline bulk PbMo6S8 samples were found to have significantly higher resistivity [ρN(16K)=680μΩcm] and upper critical field [BC2M=0(0)=110T] than conventional samples [TC0.95ρN=15.1K, ρN(16K)=80μΩcm, and BC2M=0(0)=45T, respectively; Phys. Rev. Lett. 91, 027002 (2003)]. The microstructural evolution during MM and HIP and the critical current density (JC) are presented in this paper. JC of the nanocrystalline bulk samples increased by a factor of more than 3 for high magnetic fields up to 12 T compared to the conventional sample. The scaling analysis is consistent with a grain-boundary pinning mechanism where FP≈{[BC2JC=0(T)]n/21κmμ0d*}bp(1−b)q where n∼2.35, m∼2, p∼12, q∼2, κ is the Ginzburg-Landau constant (calculated from reversible magnetization measurements), and d* is the grain size (derived from x-ray diffraction analysis). Despite the pinning framework, the underlying science that determines JC challenges the standard flux pinning paradigm that separates intrinsic and extrinsic properties, since the disorder and microstructure of these nanocrystalline materials are on a sufficiently short length scale as to increase both the density of (extrinsic) pinning sites and the (intrinsic) upper critical field.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
PbMo6S8

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12.3Pressure not reportedonset
PbMo6S8

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

15.1Pressure not reportedonset

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