Self-assembled monolayers of oligophenylenes stiffer than steel and silicon, possibly even stiffer than SiN
arXiv:2012.12330 · doi:10.1016/j.apsadv.2021.100094
Abstract
To quantify charge transport through molecular junctions fabricated using the conducting probe atomic force microscopy (CP-AFM) platform, information on the number of molecules per junction is absolutely necessary. can be currently obtained only via contact mechanics, and the Young's modulus of the self-assembled monolayer (SAM) utilized in the key quantity for this approach. The experimental determination of for SAMs of CP-AFM junctions fabricated using oligophenylene dithiols (OPDn, ) and gold electrodes turned out to be too challenging. Recent measurements (Z. Xie et al, J. Am. Chem. Soc. 139 (2017) 5696) merely succeeded to provide a low bound estimate (GPa). It is this state of affairs that motivated the present theoretical investigation. Our microscopic calculations yield values GPa for the OPDn SAMs of the aforementioned experimental study, which are larger than those of steel (GPa) and silicon (GPa). The fact that the presently computed is much larger than the aforementioned experimental lower bound explain why experimentally measuring of OPDn SAM's is so challenging. Having GPa, OPDn SAMs with herringbone arrangement adsorbed on fcc (111)Au are even stiffer than SiN (GPa).
References in corpus (3)
- Dependence of Single Molecule Junction Conductance on Molecular Conformation
- Alternation of Singlet and Triplet States in Carbon-Based Chain Molecules and Its Astrochemical Implications. Results of an Extensive Theoretical Study
- Extensive Quantum Chemistry Study of Neutral and Charged CN Chains. An Attempt to Aid Astronomical Observation