Crystallographic, Electronic, Thermal and Magnetic Properties of Single-Crystal SrCo2As2
Abhishek Pandey, D. G. Quirinale, W. Jayasekara, A. Sapkota, M. G., Kim, R. S. Dhaka, Y. Lee, T. W. Heitmann, P. W. Stephens, V. Ogloblichev, A., Kreyssig, R. J. McQueeney, A. I. Goldman, Adam Kaminski, B. N. Harmon, Y., Furukawa, D. C. Johnston

TL;DR
This study comprehensively investigates the structural, electronic, thermal, and magnetic properties of single-crystal SrCo2As2, revealing strong magnetic correlations and suggesting it may be a candidate for high-temperature superconductivity with a potential quantum spin-liquid ground state.
Contribution
The paper provides detailed experimental and theoretical analysis of SrCo2As2, highlighting its magnetic correlations, electronic structure, and potential as a high-Tc superconductor parent compound, along with proposing a quantum spin-liquid state.
Findings
Strong stripe-type antiferromagnetic correlations at 5 K
Presence of a flat band near the Fermi energy
Evidence for a gapless quantum spin-liquid ground state
Abstract
In tetragonal SrCo2As2 single crystals, inelastic neutron scattering measurements demonstrated that strong stripe-type antiferromagnetic (AFM) correlations occur at a temperature T = 5 K [W. Jayasekara et al., arXiv:1306.5174] that are the same as in the isostructural AFe2As2 (A = Ca, Sr, Ba) parent compounds of high-Tc superconductors. This surprising discovery suggests that SrCo2As2 may also be a good parent compound for high-Tc superconductivity. Here, structural and thermal expansion, electrical resistivity rho, angle-resolved photoemission spectroscopy (ARPES), heat capacity Cp, magnetic susceptibility chi, 75As NMR and neutron diffraction measurements of SrCo2As2 crystals are reported together with LDA band structure calculations that shed further light on this fascinating material. The c-axis thermal expansion coefficient alpha_c is negative from 7 to 300 K, whereas alpha_a is…
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