Molecular Tools for Non-Planar Surface Chemistry
Abstract
Scanning probe microscopy (SPM) investigations of on-surface chemistry on passivated silicon have only shown in-plane chemical reactions, and studies on bare silicon are limited in facilitating additional reactions post-molecular-attachment. Here, we enable subsequent reactions on Si(100) through selectively adsorbing 3D, silicon-specific "molecular tools". Following an activation step, the molecules present an out-of-plane radical that can function both to donate or accept molecular fragments, thereby enabling applications across multiple scales, e.g., macroscale customizable silicon-carbon coatings or nanoscale tip-mediated mechanosynthesis. Creation of many such molecular tools is enabled by broad molecular design criteria that facilitate reproducibility, surface specificity, and experimental verifiability. These criteria are demonstrated using a model molecular tool tetrakis(iodomethyl)germane (; TIMe-Ge), with experimental validation by SPM and X-ray photoelectron spectroscopy (XPS), and theoretical support by density functional theory (DFT) investigations. With this framework, a broad and diverse range of new molecular engineering capabilities are enabled on silicon.
Cite
@article{arxiv.2508.16798,
title = {Molecular Tools for Non-Planar Surface Chemistry},
author = {Taleana Huff and Brandon Blue and Terry McCallum and Mathieu Morin and Damian G. Allis and Rafik Addou and Jeremy Barton and Adam Bottomley and Doreen Cheng and Nina M. Ćulum and Michael Drew and Tyler Enright and Alan T. K. Godfrey and Ryan Groome and Aru J. Hill and Alex Inayeh and Matthew R. Kennedy and Robert J. Kirby and Mykhaylo Krykunov and Sam Lilak and Hadiya Ma and Cameron J. Mackie and Oliver MacLean and Jonathan Myall and Ryan Plumadore and Adam Powell and Henry Rodriguez and Luis Sandoval and Marc Savoie and Benjamin Scheffel and Marco Taucer and Denis A. B. Therien and Dušan Vobornik},
journal= {arXiv preprint arXiv:2508.16798},
year = {2025}
}
Comments
Manuscript is pages 1-37, 4 Figures. Supplementary Information is pages 38-86, with 24 Figures