AI Article Synopsis

  • The study focuses on creating large-scale graphene-based field-effect transistor arrays (GFETs) for bioelectronic applications.
  • The GFETs show a linear relationship between transconductance and channel geometry, with performance metrics appearing consistent across various substrates.
  • The devices successfully record bioelectronic signals from heart tissue and cardiomyocyte cell lines, demonstrating significant action potentials and even capturing neuronal signals for the first time.

Article Abstract

This work is focused on the fabrication and analysis of graphene-based, solution-gated field effect transistor arrays (GFETs) on a large scale for bioelectronic measurements. The GFETs fabricated on different substrates, with a variety of gate geometries (width/length) of the graphene channel, reveal a linear relation between the transconductance and the width/length ratio. The area normalised electrolyte-gated transconductance is in the range of 1-2 mS·V·□ and does not strongly depend on the substrate. Influence of the ionic strength on the transistor performance is also investigated. Double contacts are found to decrease the effective resistance and the transfer length, but do not improve the transconductance. An electrochemical annealing/cleaning effect is investigated and proposed to originate from the out-of-plane gate leakage current. The devices are used as a proof-of-concept for bioelectronic sensors, recording external potentials from both: ex vivo heart tissue and in vitro cardiomyocyte-like HL-1 cells. The recordings show distinguishable action potentials with a signal to noise ratio over 14 from ex vivo tissue and over 6 from the cardiac-like cell line in vitro. Furthermore, in vitro neuronal signals are recorded by the graphene transistors with distinguishable bursting for the first time.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC5532278PMC
http://dx.doi.org/10.1038/s41598-017-06906-5DOI Listing

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