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Updated: Sep 17, 2025

All-electronic Nanosecond-resolved Scanning Tunneling Microscopy: Facilitating the Investigation of Single Dopant Charge Dynamics
Published on: January 19, 2018
Correlation between 1H Nuclear Magnetic Resonance Chemical Shifts and Tunneling Transport in Self-Assembled
Gookyeong Jeong1, Sang Gil Youm1, C Daniel Frisbie1
1Department of Chemical Engineering and Materials Science, University of Minnesota, Minneapolis, Minnesota 55455, United States.
Abstract:
We investigate the correlation between solution phase 1H NMR chemical shifts δ and tunneling conductance G in molecular junctions based on self-assembled monolayers (SAMs). The SAM-forming molecules are a series of four substituted oligophenylene dithiols in which π-electron delocalization is systematically varied. Molecular junctions are formed using a conducting probe atomic force microscope (CP-AFM) to make soft contact to the SAMs on Au or Ag. We observe that G exhibits an exponential correlation with the chemical shift δβ of the β-protons for each dithiol molecule, consistent with recently reported single-molecule studies. This G-δβ sensitivity is qualitatively supported by highest occupied molecular orbital (HOMO) distribution calculations, which reflect the degree of π-electron delocalization. To further explore the underlying causes, we employ an analytical off-resonance tunneling model to extract key electronic density of states parameters from the junction current-voltage (I-V) characteristics. The extracted HOMO-Fermi level offset εh is nearly constant across the molecular series, consistent with commonly observed HOMO pinning in dithiol systems, and thus there is no correlation with δβ. In contrast, the metal-HOMO electronic coupling Γ exhibits a strong exponential correlation with δβ. Thus, we establish that the cause of the exponential G-δβ correlation is the exponential Γ-δβ correlation. We also find a linear correlation between δβ and SAM work function change ΔΦ measured with a Kelvin probe. Combining the Γ-δβ and ΔΦ-δβ correlations demonstrates that Γ is exponentially correlated with ΔΦ, which measures interfacial charge transfer. First-principles calculations are necessary for thorough understanding of these correlations, but our results demonstrate that NMR chemical shifts, which reflect local atomic structure and electron densities in molecules, are a potentially powerful tool to understand connections between molecular structure, electron density, interfacial charge transfer, and electronic coupling in molecular junctions.
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