Resonating holes vs molecular spin-orbit coupled states in group-5 lacunar spinels

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Date
2023
Volume
14
Issue
1
Journal
Nature Communications
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Book Title
Publisher
[London] : Nature Publishing Group UK
Abstract

The valence electronic structure of magnetic centers is one of the factors that determines the characteristics of a magnet. This may refer to orbital degeneracy, as for jeff = 1/2 Kitaev magnets, or near-degeneracy, e.g., involving the third and fourth shells in cuprate superconductors. Here we explore the inner structure of magnetic moments in group-5 lacunar spinels, fascinating materials featuring multisite magnetic units in the form of tetrahedral tetramers. Our quantum chemical analysis reveals a very colorful landscape, much richer than the single-electron, single-configuration description applied so far to all group-5 GaM4X8 chalcogenides, and clarifies the basic multiorbital correlations on M4 tetrahedral clusters: while for V strong correlations yield a wave-function that can be well described in terms of four V4+V3+V3+V3+ resonant valence structures, for Nb and Ta a picture of dressed molecular-orbital jeff = 3/2 entities is more appropriate. These internal degrees of freedom likely shape vibronic couplings, phase transitions, and the magneto-electric properties in each of these systems.

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Keywords
chemical analysis, electromagnetic wave, phase transition, quantum mechanics, wave
Citation
Petersen, T., Bhattacharyya, P., Rößler, U. K., & Hozoi, L. (2023). Resonating holes vs molecular spin-orbit coupled states in group-5 lacunar spinels. 14(1). https://doi.org//10.1038/s41467-023-40811-y
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License
CC BY 4.0 Unported