| Literature DB >> 32817559 |
Jong-Hoon Kang1, Jong-Woo Kim2, Philip J Ryan2,3, Lin Xie4, Lu Guo1, Chris Sundahl1, Jonathon Schad1, Neil Campbell5, Yesusa G Collantes6, Eric E Hellstrom6, Mark S Rzchowski5, Chang-Beom Eom7.
Abstract
Fe-based superconductors exhibit a diverse interplay between charge, orbital, and magnetic ordering. Variations in atomic geometry affect electron hopping between Fe atoms and the Fermi surface topology, influencing magnetic frustration and the pairing strength through changes of orbital overlap and occupancies. Here, we experimentally demonstrate a systematic approach to realize superconductivity without chemical doping in BaFe2As2, employing geometric design within an epitaxial heterostructure. We control both tetragonality and orthorhombicity in BaFe2As2 through superlattice engineering, which we experimentally find to induce superconductivity when the As-Fe-As bond angle approaches that in a regular tetrahedron. This approach to superlattice design could lead to insights into low-dimensional superconductivity in Fe-based superconductors.Entities:
Keywords: atomic geometry; epitaxial heterostructure; low-dimension; superconductivity; superlattice
Year: 2020 PMID: 32817559 PMCID: PMC7474654 DOI: 10.1073/pnas.2001123117
Source DB: PubMed Journal: Proc Natl Acad Sci U S A ISSN: 0027-8424 Impact factor: 11.205