Charge Transfer Effect under Odd-Parity Crystalline Electric Field
arXiv:1910.11466 · doi:10.7566/JPSCP.29.014001
Abstract
Charge-transfer effect under odd-parity crystalline electric field (CEF) is analyzed theoretically. In quantum-critical metal -YbAlB, seven-fold configuration of B atoms surrounding Yb atom breaks local inversion symmetry at the Yb site, giving rise to the odd-parity CEF. Analysis of the CEF on the basis of hybridization picture shows that admixture of 4f and 5d wave functions at Yb with pure imaginary coefficient occurs, which makes magnetic-toroidal (MT) and electric-dipole (ED) degrees of freedom active. By constructing the minimal model for periodic crystal -YbAlB, we show that the MT as well as ED fluctuation is divergently enhanced at the quantum critical point of valence transition simultaneously with critical valence fluctuations.
10 pages, 3 figures, proceedings of the J-Physics2019 conference
References in corpus (8)
- Classification of atomic-scale multipoles under crystallographic point groups and application to linear response tensors
- Quantum Valence Criticality as Origin of Unconventional Critical Phenomena
- Microscopic Description of Electric and Magnetic Toroidal Multipoles in Hybrid Orbitals
- Layered Kondo lattice model for quantum critical beta-YbAlB4
- T/B Scaling in beta-YbAlB4
- Kondo hybridization and quantum criticality in -YbAlB by laser-ARPES
- Effect of Anisotropic Hybridization in YbAlB Probed by Linear Dichroism in Core-Level Hard X-ray Photoemission Spectroscopy
- Charge Transfer Effect under Odd-Parity Crystalline Electric Field: Divergence of Magnetic Toroidal Fluctuation in -YbAlB