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Direct observation of high temperature superconductivity in one-unit-cell FeSe films

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abstract

Heterostructure based interface engineering has been proved an effective method for finding new superconducting systems and raising superconductivity transition temperature (TC). In previous work on one unit-cell (UC) thick FeSe films on SrTiO3 (STO) substrate, a superconducting-like energy gap as large as 20 meV, was revealed by in situ scanning tunneling microscopy/spectroscopy (STM/STS). Angle resolved photoemission spectroscopy (ARPES) further revealed a nearly isotropic gap of above 15 meV, which closes at a temperature of ~ 65 K. If this transition is indeed the superconducting transition, then the 1-UC FeSe represents the thinnest high TC superconductor discovered so far. However, up to date direct transport measurement of the 1-UC FeSe films has not been reported, mainly because growth of large scale 1-UC FeSe films is challenging and the 1-UC FeSe films are too thin to survive in atmosphere. In this work, we successfully prepared 1-UC FeSe films on insulating STO substrates with non-superconducting FeTe protection layers. By direct transport and magnetic measurements, we provide definitive evidence for high temperature superconductivity in the 1-UC FeSe films with an onset TC above 40 K and a extremely large critical current density JC ~ 1.7*106 A/cm2 at 2 K. Our work may pave the way to enhancing and tailoring superconductivity by interface engineering.

years

2024 1 2023 1

verdicts

UNVERDICTED 2

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Showing 2 of 2 citing papers.

  • Monoclinic LaSb$_2$ Superconducting Thin Films cond-mat.mtrl-sci · 2024-02-14 · unverdicted · none · ref 30 · internal anchor

    Discovery of monoclinic YbSb2-type LaSb2 thin films hosting superconductivity at Tc=2 K, enhanced relative to bulk.

  • Supercell formation in epitaxial rare-earth ditelluride thin films cond-mat.mtrl-sci · 2023-08-27 · unverdicted · none · ref 1 · internal anchor

    Epitaxial DyTe_{2-δ} films on MgO show a Te-deficiency supercell attributed via DFT to Fermi surface nesting that periodically occupies the Te square net and opens a gap.