Issue 45, 2021

Mesoporous thin films on graphene FETs: nanofiltered, amplified and extended field-effect sensing

Abstract

The ionic screening and the response of non-specific molecules are great challenges of biosensors based on field-effect transistors (FETs). In this work, we report the construction of graphene based transistors modified with mesoporous silica thin films (MTF-GFETs) and the unique (bio)sensing properties that arise from their synergy. The developed method allows the preparation of mesoporous thin films free of fissures, with an easily tunable thickness, and prepared on graphene-surfaces, preserving their electronic properties. The MTF-GFETs show good sensing capacity to small probes that diffuse inside the mesopores and reach the graphene semiconductor channel such as H+, OH, dopamine and H2O2. Interestingly, MTF-GFETs display a greater electrostatic gating response in terms of amplitude and sensing range compared to bare-GFETs for charged macromolecules that infiltrate the pores. For example, for polyelectrolytes and proteins of low MW, the amplitude increases almost 100% and the sensing range extends more than one order of magnitude. Moreover, these devices show a size-excluded electrostatic gating response given by the pore size. These features are even displayed at physiological ionic strength. Finally, a developed thermodynamic model evidences that the amplification and extended field-effect properties arise from the decrease of free ions inside the MTFs due to the entropy loss of confining ions in the mesopores. Our results demonstrate that the synergistic coupling of mesoporous films with FETs leads to nanofiltered, amplified and extended field-effect sensing (NAExFES).

Graphical abstract: Mesoporous thin films on graphene FETs: nanofiltered, amplified and extended field-effect sensing

Supplementary files

Article information

Article type
Paper
Submitted
08 Jun 2021
Accepted
14 Oct 2021
First published
14 Oct 2021

Nanoscale, 2021,13, 19098-19108

Mesoporous thin films on graphene FETs: nanofiltered, amplified and extended field-effect sensing

S. Alberti, E. Piccinini, P. G. Ramirez, G. S. Longo, M. Ceolín and O. Azzaroni, Nanoscale, 2021, 13, 19098 DOI: 10.1039/D1NR03704H

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