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Orbital origin of magnetic moment enhancement induced by charge density wave in kagome FeGe
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Interactions among various electronic states such as CDW, magnetism, and superconductivity are of high significance in strongly correlated systems. While significant progress has been made in understanding the relationship between CDW and superconductivity, the interplay between CDW and magnetic order remains largely elusive. Kagome lattices, which intertwine nontrivial topology, charge order, and magnetism, offer an ideal platform for such studies. The kagome magnet FeGe, hosting the unique coupling between CDW and magnetism, has recently garnered considerable attention in that respect. Here we reveal the significant role of the orbital coupling effect during the CDW phase transition, highlighting the orbital origin of the magnetic moment enhancement in FeGe. Our X ray absorption experiments and first principles calculations illuminate the temperature dependent behavior of Fe3d_Ge4p orbital hybridization and corroborate its pivotal impact on the magnetic properties of FeGe. These findings introduce an orbital dimension to the correlation between charge and magnetic degrees of freedom, advancing our understanding of the intriguing quantum phases resulting from this interplay.
Forward citations
Cited by 3 Pith papers
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Sequential Topological Superconductivity in a Square Lattice with Chiral Charge Density Waves
On a square lattice with coexisting bond and chiral-flux charge order, s-wave superconductivity develops sequential topological phases with Chern numbers +2 and -2.
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Competing phases in kagome magnet FeGe from functional renormalization
A DFT-plus-functional-renormalization-group study places FeGe close to competing charge-density-wave, spin-Pomeranchuk, and triplet superconducting instabilities, with superconductivity favored at slightly increased n...
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Optical evidence of the band reconstruction during the charge-density wave transition in annealed Kagome magnet FeGe
Optical spectroscopy shows spectral weight moves from below 0.4 eV to 0.8 to 1.5 eV across the CDW transition in FeGe, attributed to Ge1 distortion and a Hund-coupling-driven spin-state change.
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