Related Experiment Video
Updated: Sep 26, 2025

Scalable Quantum Integrated Circuits on Superconducting Two-Dimensional Electron Gas Platform
Published on: August 2, 2019
Anisotropy-driven quantum criticality in an intermediate valence system
Mihael S Grbić1,2, Eoin C T O'Farrell3, Yosuke Matsumoto4
1Institute for Solid State Physics (ISSP), University of Tokyo, Kashiwa, 277-8581, Japan. mgrbic@phy.hr.
Abstract:
Intermetallic compounds containing f-electron elements have been prototypical materials for investigating strong electron correlations and quantum criticality (QC). Their heavy fermion ground state evoked by the magnetic f-electrons is susceptible to the onset of quantum phases, such as magnetism or superconductivity, due to the enhanced effective mass (m*) and a corresponding decrease of the Fermi temperature. However, the presence of f-electron valence fluctuations to a non-magnetic state is regarded an anathema to QC, as it usually generates a paramagnetic Fermi-liquid state with quasiparticles of moderate m*. Such systems are typically isotropic, with a characteristic energy scale T0 of the order of hundreds of kelvins that require large magnetic fields or pressures to promote a valence or magnetic instability. Here we show the discovery of a quantum critical behaviour and a Lifshitz transition under low magnetic field in an intermediate valence compound α-YbAlB4. The QC origin is attributed to the anisotropic hybridization between the conduction and localized f-electrons. These findings suggest a new route to bypass the large valence energy scale in developing the QC.
Related Concept Videos
The Quantum-Mechanical Model of an Atom
Trends in Lattice Energy: Ion Size and Charge
Valence Bond Theory
Atomic Radii and Effective Nuclear Charge
Valence Bond Theory and Hybridized Orbitals
A σ bond (single bond in a Lewis structure) is a covalent bond in which the electron density is...
Quantum Numbers

