We have measured upper-critical-field Hc2, specific heat C, and
tunneling spectra of the intermetallic perovskite superconductor MgCNi3
with a superconducting transition temperature Tc≈7.6 K. Based
on these measurements and relevant theoretical relations, we have evaluated
various superconducting parameters for this material, including the
thermodynamic critical field Hc(0), coherence length ξ(0),
penetration depth λ(0), lower-critical-field Hc1(0), and
Ginsberg-Landau parameter κ(0). From the specific heat, we obtain the
Debye temperature ΘD≈ 280 K. We find a jump of
ΔC/γTc=2.3 at Tc (where γ is the
normal state electronic specific coefficient), which is much larger than the
weak coupling BCS value of 1.43. Our tunneling measurements revealed a gap
feature in the tunneling spectra at Δ with 2Δ/kBTc≈ 4.6, again larger than the weak-coupling value
of 3.53. Both findings indicate that MgCNi3 is a strong-coupling
superconductor. In addition, we observed a pronounced zero-bias conductance
peak (ZBCP) in the tunneling spectra.
We discuss the possible physical origins of the observed ZBCP, especially in
the context of the pairing symmetry of the material.Comment: 5 pages, 4 figure