English

Colossal magnetoresistance in EuZn$_2$P$_2$ and its electronic and magnetic structure

Strongly Correlated Electrons 2023-08-17 v2

Abstract

We investigate single crystals of the trigonal antiferromagnet EuZn2_2P2_2 (P3m1P\overline{3}m1) by means of electrical transport, magnetization measurements, X-ray magnetic scattering, optical reflectivity, angle-resolved photoemission spectroscopy (ARPES) and ab-initio band structure calculations (DFT+U). We find that the electrical resistivity of EuZn2_2P2_2 increases strongly upon cooling and can be suppressed in magnetic fields by several orders of magnitude (CMR effect). Resonant magnetic scattering reveals a magnetic ordering vector of q=(0012)q = (0\, 0\, \frac{1}{2}), corresponding to an AA-type antiferromagnetic (AFM) order, below TN=23.7KT_{\rm N} = 23.7\,\rm K. We find that the moments are canted out of the aaa-a plane by an angle of about 40±1040^{\circ}\pm 10^{\circ} degrees and aligned along the [100] in the aaa-a plane. We observe nearly isotropic magnetization behavior for low fields and low temperatures which is consistent with the magnetic scattering results. The magnetization measurements show a deviation from the Curie-Weiss behavior below 150K\approx 150\,\rm K, the temperature below which also the field dependence of the material's resistivity starts to increase. An analysis of the infrared reflectivity spectrum at T=295KT=295\,\rm K allows us to resolve the main phonon bands and intra-/interband transitions, and estimate indirect and direct band gaps of Eiopt=0.09eVE_i^{\mathrm{opt}}=0.09\,\rm{eV} and Edopt=0.33eVE_d^{\mathrm{opt}}=0.33\,\rm{eV}, respectively, which are in good agreement with the theoretically predicted ones. The experimental band structure obtained by ARPES is nearly TT-independent above and below TNT_{\rm N}. The comparison of the theoretical and experimental data shows a weak intermixing of the Eu 4ff states close to the Γ\Gamma point with the bands formed by the phosphorous 3pp orbitals leading to an induction of a small magnetic moment at the P sites.

Keywords

Cite

@article{arxiv.2302.14539,
  title  = {Colossal magnetoresistance in EuZn$_2$P$_2$ and its electronic and magnetic structure},
  author = {Sarah Krebber and Marvin Kopp and Charu Garg and Kurt Kummer and Jörg Sichelschmidt and Susanne Schulz and Georg Poelchen and Max Mende and Alexander V. Virovets and Konstantin Warawa and Mark D. Thomson and Artem V. Tarasov and Dmitry Yu. Usachov and Denis V. Vyalikh and Hartmut G. Roskos and Jens Müller and Cornelius Krellner and Kristin Kliemt},
  journal= {arXiv preprint arXiv:2302.14539},
  year   = {2023}
}