Interest in the superconducting proximity effect has recently been reignited by theoretical predictions that it could be used to achieve topological superconductivity. Low-Tc superconductors have predominantly been used in this effort, but small energy scales of ~1 meV have hindered the characterization of the emergent electronic phase, limiting it to extremely low temperatures. In this work, we use molecular beam epitaxy to grow topological insulator Bi2Te3 in a range of thicknesses on top of a high-Tc superconductor Fe(Te,Se). Using scanning tunneling microscopy and spectroscopy, we detect {\Delta}ind as high as ~3.5 meV, which is the largest reported gap induced by proximity to an s-wave superconductor to-date. We find that {\Delta}ind decays with Bi2Te3 thickness, but remains finite even after the topological surface states had been formed. Finally, by imaging the scattering and interference of surface state electrons, we provide a microscopic visualization of the fully gaped Bi2Te3 surface state due to Cooper pairing. Our results establish Fe-based high-Tc superconductors as a promising new platform for realizing high-Tc topological superconductivity.
@article{arxiv.1804.10141,
title = {Superconducting proximity effect in a topological insulator using Fe(Te,Se)},
author = {He Zhao and Bryan Rachmilowitz and Zheng Ren and Ruobin Han and J. Schneeloch and Ruidan Zhong and Genda Gu and Ziqiang Wang and Ilija Zeljkovic},
journal= {arXiv preprint arXiv:1804.10141},
year = {2018}
}