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Hydroflux-Controlled Growth of Magnetic K-Cu-Te-O(H) Phases

Strongly Correlated Electrons 2024-03-28 v1 Materials Science

Abstract

Innovative synthetic approaches can yield new phases containing novel structural and magnetic motifs. In this work, we show the synthesis and magnetic characterization of three new and one previously reported layered phase in the K-Cu-Te-O(H) phase space using a tunable hydroflux technique. The hydroflux, with a roughly equal molar ratio of water and alkali hydroxide, is a highly oxidizing, low melting solvent which can be used to isolate metastable phases unattainable through traditional solid state or flux techniques. The newly synthesized phases, K2_{2}Cu2_{2}TeO6_{6}, K2_{2}Cu2_{2}TeO6_{6} \cdot H2_{2}O, and K6_{6}Cu9_{9}Te4_{4}O24_{24} \cdot 2 H2_{2}O, contain Cu2+^{2+} within CuO4_{4} square planar plaquettes and TeO6_{6} octahedra ordering to form structural honeycomb layers isolated by interlayer K+^{+} ions and H2_{2}O molecules. We find the synthesized structures display varying tilt sequences of the CuO4_{4} plaquettes, leading to distinct Cu2+^{2+} magnetic motifs on the structural honeycomb lattice and a range of effective magnetic dimensionalities. We find that K2_{2}Cu2_{2}TeO6_{6} \cdot H2_{2}O does not order and displays alternating chain Heisenberg antiferromagnetic (AFM) behavior, while K2_{2}Cu2_{2}TeO6_{6} and K6_{6}Cu9_{9}Te4_{4}O24_{24} \cdot 2 H2_{2}O order antiferromagnetically (TN_{N} = 100 K and TN_{N} = 6.5 K respectively). The previously known phase, K2_{2}CuTeO4_{4}(OH)2_{2} \cdot H2_{2}O, we find contains structurally and magnetically one-dimensional CuO4_{4} plaquettes leading to uniform chain Heisenberg AFM behavior and shows no magnetic order down to T = 0.4 K. We discuss and highlight the usefulness of the hydroflux technique in novel syntheses and the interesting magnetic motifs that arise in these particular phases.

Keywords

Cite

@article{arxiv.2403.18726,
  title  = {Hydroflux-Controlled Growth of Magnetic K-Cu-Te-O(H) Phases},
  author = {Allana G. Iwanicki and Brandon Wilfong and Eli Zoghlin and Wyatt Bunstine and Maxime A. Siegler and Tyrel M. McQueen},
  journal= {arXiv preprint arXiv:2403.18726},
  year   = {2024}
}