Crystallography and Physical Properties of BaCo2As2, Ba{0.94}K{0.06}Co2As2 and Ba{0.78}K{0.22}Co2As2
V. K. Anand, D. G. Quirinale, Y. Lee, B. N. Harmon, Y. Furukawa, V. V., Ogloblichev, A. Huq, D. L. Abernathy, P. W. Stephens, R. J. McQueeney, A., Kreyssig, A. I. Goldman, D. C. Johnston

TL;DR
This study investigates the structural and physical properties of BaCo2As2 and K-doped variants, revealing anomalous thermal expansion, Fermi liquid behavior, and weak ferromagnetism in certain doped samples, using comprehensive diffraction, magnetic, and spectroscopic techniques.
Contribution
It provides detailed characterization of BaCo2As2 and K-doped BaCo2As2, highlighting anomalous thermal expansion and magnetic properties, and compares growth methods and doping effects.
Findings
BaCo2As2 exhibits negative thermal expansion along c-axis.
Low-temperature resistivity indicates Fermi liquid behavior.
Weak ferromagnetism observed in lightly K-doped samples.
Abstract
The crystallographic and physical properties of polycrystalline and single crystal samples of BaCo2As2 and K-doped Ba{1-x}K{x}Co2As2 (x = 0.06, 0.22) are investigated by x-ray and neutron powder diffraction, magnetic susceptibility chi, magnetization, heat capacity Cp, {75}As NMR and electrical resistivity rho measurements versus temperature T. The crystals were grown using both Sn flux and CoAs self-flux, where the Sn-grown crystals contain 1.6-2.0 mol% Sn. All samples crystallize in the tetragonal ThCr2Si2-type structure (space group I4/mmm). For BaCo2As2, powder neutron diffraction data show that the c-axis lattice parameter exhibits anomalous negative thermal expansion from 10 to 300 K, whereas the a-axis lattice parameter and the unit cell volume show normal positive thermal expansion over this T range. No transitions in BaCo2As2 were found in this T range from any of the…
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