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Dynamical Superconducting Parity Effect in a Coulomb Pb Island

Wenhao Zhang1,2, Xin Liao1, James Jun He3,4,*, Hui-Nan Xia1, Tao Xie1, Naoto Nagaosa5,6, Tianyou Zhai7, and Ying-Shuang Fu1,2,†

  • *Contact author: jun_he@ustc.edu.cn
  • †Contact author: yfu@hust.edu.cn

Phys. Rev. Lett. 136, 056201 – Published 2 February, 2026

DOI: https://doi.org/10.1103/fsgy-61v9

Abstract

Single-electron tunneling in mesoscopic superconducting islands has demonstrated a parity-modulated Coulomb blockade periodicity for decades. Yet, the quasiparticle dynamics mediating the interplay between Cooper-pair condensate coherence and charging energy remains poorly understood. Here, we uncover a new type of superconducting parity effect in a Coulomb blockade system comprising nano-sized Pb islands, investigated via low-temperature scanning tunneling spectroscopy. Our spectroscopic measurements demonstrate parity-dependent Coulomb gaps near the Fermi energy, associated with equidistant Coulomb peaks at higher energies. The parity dependence is distinct from the conventional even-odd Coulomb peak alternations and is validated through a parity transition of a Coulomb charge ring. As corroborated by theoretical simulations, we dub such intriguing phenomenon as the “dynamical” superconducting parity effect, which originates from an emergent tunneling channel facilitated by electron-hole conversion processes, dynamically coupled to Cooper-pair condensation. Our observations underscore the essential role of quasiparticle-mediated Cooper-pair formation in Coulomb blockade transport.

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