English

Stoichiometric FeTe is a Superconductor

Superconductivity 2026-04-28 v1 Mesoscale and Nanoscale Physics Materials Science

Abstract

Iron-based superconductors are a fascinating family of materials in which multiple electronic bands and strong antiferromagnetic (AFM) correlations are key ingredients for competing ground states, including antiferromagnetism, electronic nematicity, and unconventional superconductivity. FeTe, unlike its superconducting isostructural counterpart FeSe, has long been regarded as an AFM metal sans superconductivity. In this work, we employ molecular beam epitaxy to grow FeTe films and perform post-growth annealing under a Te flux. By performing spin-polarized scanning tunneling microscopy and spectroscopy, we demonstrate that the AFM order in as-grown FeTe films is induced by interstitial Fe atoms that disrupt the ideal 1:1 stoichiometry. Remarkably, the removal of these interstitial Fe atoms through Te annealing yields stoichiometric FeTe films that show no AFM order and instead exhibit robust superconductivity with a critical temperature of ~13.5K. This superconducting state is further confirmed by the observation of Cooper pair tunneling, zero electrical resistance, and the Meissner effect. Therefore, our results demonstrate that stoichiometric FeTe is inherently a superconductor, overturning a long-held view that it is an AFM metal. This work clarifies the origin of superconductivity in FeTe-based heterostructures and demonstrates the importance of stoichiometry control in understanding the competition between AFM and superconductivity in iron-based superconductors.

Keywords

Cite

@article{arxiv.2603.16115,
  title  = {Stoichiometric FeTe is a Superconductor},
  author = {Zi-Jie Yan and Zihao Wang and Bing Xia and Stephen Paolini and Ying-Ting Chan and Nikalabh Dihingia and Hongtao Rong and Pu Xiao and Kalana D. Halanayake and Jiatao Song and Veer Gowda and Danielle Reifsnyder Hickey and Weida Wu and Jiabin Yu and Peter J. Hirschfeld and Cui-Zu Chang},
  journal= {arXiv preprint arXiv:2603.16115},
  year   = {2026}
}

Comments

39 pages, 4 main figures, and 10 extended data figures. Accepted by Nature. Comments are very welcome

R2 v1 2026-07-01T11:23:34.481Z