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Intrinsic Superconducting Gap in Bilayer KCa2Fe4As4F2 and Decoupled Monolayer FeAs
Shiwu Su1,2, Jun Zhan3,4, Huaxun Li5
1Hefei National Research Center for Physical Sciences at Microscale and School of Emerging Technology, University of Science and Technology of China, Hefei, 230026, China.
Abstract:
Despite extensive progress in iron-based superconductors, how interlayer coupling affects superconductivity remains a key unresolved issue. Here, using angle-resolved photoemission spectroscopy, we successfully resolve the electronic structure of a surface-decoupled FeAs monolayer in KCa2Fe4As4F2, a rare example in iron pnictides. This allows for a direct, side-by-side comparison between the basic FeAs unit and its bulk bilayer counterpart within a single sample. Two distinct superconducting phases are identified: a bulk bilayer phase with Tc ∼ 34 K and a surface-decoupled monolayer phase with a smaller gap vanishing at ∼18 K. In addition to probable enhanced fluctuations in single-layer FeAs, we propose that this Tc difference may originate from either interfacial effect, such as phonon-mediated assistance from the CaF layers or electronic interlayer hopping within the bilayer unit. Our work offers a refined framework for understanding the superconductivity in multilayer iron-based superconductors.
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