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Controlled manipulation of intermediate state in a type-I superconductor

Xin-Sheng Gao1, Qun Wang1, Ya-Xun He1, Xing-Jian Liu1, Jun-Han Zhang1, Kang-Hong Yin1, Jia-Ying Zhang1, and Jun-Yi Ge1,2,3,*

  • 1Materials Genome Institute, Shanghai University, Shanghai 200444, China
  • 2Department of Physics, Shanghai Key Laboratory for High Temperature Superconductors, Shanghai University, Shanghai 200444, China
  • 3Institute for Quantum Science and Technology, Shanghai University, Shanghai 200444, China

  • *Contact author: junyi_ge@t.shu.edu.cn

Phys. Rev. B 113, 134520 – Published 22 April, 2026

DOI: https://doi.org/10.1103/jwy8-cqcm

Abstract

The intermediate state of type-I superconductors presents a classic paradigm of modulated pattern formation, arising from the competition between short-range attractive and long-range repulsive vortex-vortex interactions. However, direct visualization and, more importantly, active control over the topology and dynamics of these flux structures have remained significant challenges, limiting our ability to manipulate them for fundamental studies and potential applications. Here, using low-temperature magnetic force microscopy, we achieve direct imaging and controllable manipulation of the flux structures in a high-purity tantalum single crystal. We systematically track the evolution of flux morphology—from tubes to stripes—during flux penetration and expulsion, revealing a pronounced topological hysteresis originating from the geometric barrier. Furthermore, we demonstrate precise local control by using the magnetic tip to drag and merge individual flux tubes and to reconfigure entire stripe domains. Under global alternating current (ac) excitation, we discover a reversible stripe-grid-stripe transition, a dynamic reorganization driven by current-induced flux penetration and pinning effects. The corresponding phase diagram shows that the threshold current decreases with magnetic field but increases with ac frequency. Our work establishes a pathway for active flux manipulation in type-I superconductors, revealing rich dynamics and paving the way for flux-based superconducting devices.

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