Revealing the Microscopic Picture of the Charge Transfer Mechanism between Graphene and Dopant Molecules

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Date

2023

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American Chemical Society

Abstract

It is generally recognized that the dipole moment of the adsorbed molecules is a crucial factor in determining the charge-transfer interaction between molecules and graphene. However, the microscopic details of this process have remained elusive. In this study, we experimentally investigate the charge-transfer interaction between adsorbed molecules and graphene, which holds great promise for achieving controllable doping. By trapping various molecules at the graphene-substrate interface, our results emphasize that the doping effect primarily depends on the reactivity of the constituent atoms in the attached molecules rather than just their dipole moment. Observation of (i) the emergence of the Raman D peak exclusively at the edges for trapped molecules without reactive atoms, and throughout the entire basal plane for those with reactive atoms, and (ii) variations in the density of attached molecules (with and without reactive atoms) to graphene with their respective dipole moments provides compelling evidence to support our claim. These findings are well-supported by experimental results and first-principles density functional theory calculations. © 2023 American Chemical Society.

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Keywords

Atoms, Charge transfer, Density functional theory, Dipole moment, Molecules, Adsorbed molecules, Basal planes, Basal-planes, Charge transfer interaction, Charge-transfer mechanism, Dopant molecules, Doping effects, Graphene substrates, Substrate interface, Trapped molecules, Graphene

Citation

Journal of Physical Chemistry C, 2023, 127, 37, pp. 18466-18473

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