Scanning Tunneling Spectroscopy (STS) is a unique technique to probe the local density of states (LDOS) at the atomic scale by measuring the tunneling conductance between a sharp tip and a sample surface. However, the technique suffers of well-known limitations, the so-called set-point effect, which can potentially introduce artifacts in the measurements. We compare several STS imaging schemes applied to the LDOS modulations of the charge density wave state on atomically flat surfaces, and demonstrate that only constant-height STS is capable of mapping the intrinsic LDOS. In the constant-current STS, commonly used and easier-to-implement, the tip-sample distance variations imposed by the feedback loop result in set-point-dependent STS images and possibly mislead the identification of the CDW gap edges.
@article{arxiv.2406.03294,
title = {Feedback loop dependent charge density wave imaging by scanning tunneling spectroscopy},
author = {Alessandro Scarfato and Árpád Pásztor and Lihuan Sun and Ivan Maggio-Aprile and Vincent Pasquier and Tejas Parasram Singar and Andreas Ørsted and Ishita Pushkarna and Marcello Spera and Enrico Giannini and Christoph Renner},
journal= {arXiv preprint arXiv:2406.03294},
year = {2024}
}