Km Rubi, King Yau Yip, Elizabeth Krenkel, Nurul Fitriyah, Xing Gao, Saurav Prakash, L. E. Chow, Chi Sin Tang, Tsz Fung Poon, Swee K. Goh, S. M. Thomas, A. P. Dioguardi, Oscar Ayala-Valenzuela, Mark B. H. Breese, M. K. Chan, David Graf, Ariando Ariando, N. Harrison
Magnetic fields typically suppress superconductivity through Pauli and orbital limiting effects. However, there are rare instances of magnetic-field-induced superconductivity, as observed in Chevrel-phase compounds, organic conductors, uranium-based heavy-fermion systems, and moiré graphene—although these materials possess inherently low superconducting transition temperatures (Tc). Here, we demonstrate high-field-stabilized superconductivity in a class of materials recently shown to have significantly higher Tc values (up to 40 K): the infinite-layer nickelates. We show that both the low-field and high-field superconducting states can be understood in terms of a field-compensation mechanism, better known as the Jaccarino-Peter effect. These findings demonstrate the possibility of achieving substantially enhanced upper critical fields in high-temperature superconductors. The authors demonstrate high-magnetic-field-stabilized re-entrant superconductivity in infinite-layer nickelate thin films. They show that both the low-field and high-field superconducting states can be understood in terms of a field-compensation mechanism known as the Jaccarino-Peter effect.