Metallicity of Ca2Cu6P5 with Single and Double Copper-Pnictide Layers
Li Li, David Parker, Miaofang Chi, Georgiy M. Tsoi, Yogesh K. Vohra,, and Athena S. Sefat

TL;DR
This study investigates the electronic, magnetic, and transport properties of Ca2Cu6P5, revealing its metallic nature, low density of states at the Fermi level, and the significance of Cu-P layer details, contrasting with iron-based superconductors.
Contribution
It provides the first comprehensive analysis of Ca2Cu6P5's properties, highlighting differences from Fe-based superconductors and emphasizing the role of Cu-P layers in transport behavior.
Findings
Ca2Cu6P5 exhibits temperature-independent magnetic susceptibility.
Ca2Cu6P5 shows metallic behavior with low resistivity.
Theoretical calculations indicate low DOS at Fermi level for Cu-based compounds.
Abstract
We report thermodynamic and transport properties, and also theoretical calculations, for Cu-based compound Ca2Cu6P5 and compare with CaCu(2-x)P2. Both materials have layers of edge-sharing copper pnictide tetrahedral CuP4, similar to Fe-As and Fe-Se layers (with FeAs4, FeSe4) in the iron-based superconductors. Despite the presence of this similar transition-metal pnictide layer, we find that both Ca2Cu6P5 and CaCu(2-x)P2 have temperature-independent magnetic susceptibility and show metallic behavior with no evidence of either magnetic ordering or superconductivity down to 1.8 K. CaCu(2-x)P2 is slightly off-stoichiometric, with delta = 0.14. Theoretical calculations suggest that unlike Fe 3d-based magnetic materials with a large density of states (DOS) at the Fermi surface, Cu have comparatively low DOS, with the majority of the 3d spectral weight located well below Fermi level. The…
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