Controlling the charge transfer flow at the graphene/pyrene-nitrilotriacetic acid interface

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Abstract

The fabrication of highly efficient bio-organic nanoelectronic devices is still a challenge due to the difficulty in interfacing the biomolecular component to the organic counterparts. One of the ways to overcome this bottleneck is to add a self-assembled monolayer (SAM) in between the electrode and the biological material. The addition of a pyrene-nitrilotriacetic acid layer to a graphene metal electrode enhances the charge transfer within the device. Our theoretical calculations and electrochemical results show that the formation of a pyrene-nitrilotriacetic acid SAM enforces a direct electron transfer from graphene to the SAM, while the addition of the Ni2+ cation and imidazole reverses the charge transfer direction, allowing an atomic control of the electron flow, which is essential for a true working device.

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Osella, S., Kiliszek, M., Harputlu, E., Unlu, C. G., Ocakoglu, K., Kargul, J., & Trzaskowski, B. (2018). Controlling the charge transfer flow at the graphene/pyrene-nitrilotriacetic acid interface. Journal of Materials Chemistry C, 6(18), 5046–5054. https://doi.org/10.1039/c8tc00564h

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