Electronic and magnetic properties of light rare-earth cubic Laves compounds derived from XMCD experiments
Vilde G. S. Lunde, Benedicte S. Ofstad, {\O}ystein S. Fjellv{\aa}g, Philippe Ohresser, Anja O. Sj{\aa}stad, Bj{\o}rn C. Hauback, Christoph Frommen

TL;DR
This study investigates the electronic and magnetic properties of light rare-earth cubic Laves compounds using XMCD, revealing insights into magnetic moments, valence states, and the effects of crystal field and composition.
Contribution
It provides a detailed analysis of element-specific magnetic moments and valence states in light rare-earth Laves phases, highlighting the importance of accurate sum rule application and crystal field effects.
Findings
Ni exhibits a finite magnetic moment, challenging previous assumptions.
Nd and Pr magnetic moments are suppressed due to crystal field effects.
Ce shows a tunable mixed-valent ground state influenced by transition metal electronegativity.
Abstract
This work presents electronic and magnetic properties of selected members in the cubic Laves phase series Nd1-xPrxCoNi and Ce0.25Pr0.75CoNi, together with the corresponding binary compositions (NdCo2, NdNi2, PrCo2, PrNi2, CeCo2, CeNi2), using soft x-ray absorption spectroscopy, x-ray magnetic circular dichroism (XMCD), density-functional theory, and crystal field multiplet calculations. All transition-metal moments saturate below 1 T, while the rare-earth moments do not saturate even at 5 T, consistent with van Vleck paramagnetic contributions and crystal field suppression. While the sum rules are widely used to extract element-specific magnetic moments from XMCD, we show that for 3d transition metals, their application requires accurate estimates of the number of unoccupied 3d states. We observe a finite magnetic moment on Ni, challenging the common assumption of its nonmagnetic…
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