English

Microwave spectroscopy of interacting Andreev spins

Mesoscale and Nanoscale Physics 2024-01-09 v1 Superconductivity Quantum Physics

Abstract

Andreev bound states are fermionic states localized in weak links between superconductors which can be occupied with spinful quasiparticles. Microwave experiments using superconducting circuits with InAs/Al nanowire Josephson junctions have recently enabled probing and coherent manipulation of Andreev states but have remained limited to zero or small fields. Here we use a flux-tunable superconducting circuit in external magnetic fields up to 1T to perform spectroscopy of spin-polarized Andreev states up to ~250 mT, beyond which the spectrum becomes gapless. We identify singlet and triplet states of two quasiparticles occupying different Andreev states through their dispersion in magnetic field. These states are split by exchange interaction and couple via spin-orbit coupling, analogously to two-electron states in quantum dots. We also show that the magnetic field allows to drive a direct spin-flip transition of a single quasiparticle trapped in the junction. Finally, we measure a gate- and field-dependent anomalous phase shift of the Andreev spectrum, of magnitude up to approximately 0.7π0.7\pi. Our observations demonstrate new ways to manipulate Andreev states in a magnetic field and reveal spin-polarized triplet states that carry supercurrent.

Keywords

Cite

@article{arxiv.2208.11198,
  title  = {Microwave spectroscopy of interacting Andreev spins},
  author = {J. J. Wesdorp and F. J. Matute-Caňadas and A. Vaartjes and L. Grünhaupt and T. Laeven and S. Roelofs and L. J. Splitthoff and M. Pita-Vidal and A. Bargerbos and D. J. van Woerkom and P. Krogstrup and L. P. Kouwenhoven and C. K. Andersen and A. Levy Yeyati and B. van Heck and G. de Lange},
  journal= {arXiv preprint arXiv:2208.11198},
  year   = {2024}
}