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Temperature-Dependent Coherent Tunneling across Graphene–Ferritin Biomolecular Junctions

Authors :
Gupta, Nipun Kumar
Karuppannan, Senthil Kumar
Pasula, Rupali Reddy
Vilan, Ayelet
Martin, Jens
Xu, Wentao
May, Esther Maria
Pike, Andrew R.
Astier, Hippolyte P. A. G.
Salim, Teddy
Lim, Sierin
Nijhuis, Christian A.
Source :
ACS Applied Materials & Interfaces; October 2022, Vol. 14 Issue: 39 p44665-44675, 11p
Publication Year :
2022

Abstract

Understanding the mechanisms of charge transport (CT) across biomolecules in solid-state devices is imperative to realize biomolecular electronic devices in a predictive manner. Although it is well-accepted that biomolecule–electrode interactions play an essential role, it is often overlooked. This paper reveals the prominent role of graphene interfaces with Fe-storing proteins in the net CT across their tunnel junctions. Here, ferritin (AfFtn-AA) is adsorbed on the graphene by noncovalent amine–graphene interactions confirmed with Raman spectroscopy. In contrast to junctions with metal electrodes, graphene has a vanishing density of states toward its intrinsic Fermi level (“Dirac point”), which increases away from the Fermi level. Therefore, the amount of charge carriers is highly sensitive to temperature and electrostatic charging (induced doping), as deduced from a detailed analysis of CT as a function of temperature and iron loading. Remarkably, the temperature dependence can be fully explained within the coherent tunneling regime due to excitation of hot carriers. Graphene is not only demonstrated as an alternative platform to study CT across biomolecular tunnel junctions, but it also opens rich possibilities in employing interface electrostatics in tuning CT behavior.

Details

Language :
English
ISSN :
19448244
Volume :
14
Issue :
39
Database :
Supplemental Index
Journal :
ACS Applied Materials & Interfaces
Publication Type :
Periodical
Accession number :
ejs60869506
Full Text :
https://doi.org/10.1021/acsami.2c11263