Detection of lysine molecular ions in solution gated field effect transistors based on unmodified graphene

The electrical transport in graphene interfaced with different ions in solution gated graphene field effect transistors (GFETs) is the subject of active studies due to its importance in sensor fabrication. Most of the developed GFET biological sensors use graphene that has been modified. The difficu...

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Published inJournal of applied physics Vol. 128; no. 21
Main Authors Butko, A. V., Butko, V. Y., Lebedev, S. P., Lebedev, A. A., Davydov, V. Y., Eliseyev, I. A., Kumzerov, Y. A.
Format Journal Article
LanguageEnglish
Published Melville American Institute of Physics 07.12.2020
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ISSN0021-8979
1089-7550
DOI10.1063/5.0028108

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Abstract The electrical transport in graphene interfaced with different ions in solution gated graphene field effect transistors (GFETs) is the subject of active studies due to its importance in sensor fabrication. Most of the developed GFET biological sensors use graphene that has been modified. The difficulty in the modification procedure and the reduction in quality of graphene that it causes are important drawbacks for applications. Therefore, we focus on GFETs based on unmodified graphene gated by aqueous solutions containing lysine amino acids. We observed that an increase in the ionic concentration of lysine in these solutions leads to a suppression of unipolar electron conductance of graphene in GFETs. This dependence is opposite to the dependence typically observed in gating solutions containing smaller atomic ions. We attribute the observed suppression to electric field screening of the graphene surface from water molecules by lysine ions which are larger and have lower charge density compared to atomic ions. This novel phenomenon leads to an overall decrease of surface charge density in molecular layers formed at the graphene interface and can be applied in GFET sensors with unmodified graphene that detect the presence and concentration of large molecules in the gating solutions.
AbstractList The electrical transport in graphene interfaced with different ions in solution gated graphene field effect transistors (GFETs) is the subject of active studies due to its importance in sensor fabrication. Most of the developed GFET biological sensors use graphene that has been modified. The difficulty in the modification procedure and the reduction in quality of graphene that it causes are important drawbacks for applications. Therefore, we focus on GFETs based on unmodified graphene gated by aqueous solutions containing lysine amino acids. We observed that an increase in the ionic concentration of lysine in these solutions leads to a suppression of unipolar electron conductance of graphene in GFETs. This dependence is opposite to the dependence typically observed in gating solutions containing smaller atomic ions. We attribute the observed suppression to electric field screening of the graphene surface from water molecules by lysine ions which are larger and have lower charge density compared to atomic ions. This novel phenomenon leads to an overall decrease of surface charge density in molecular layers formed at the graphene interface and can be applied in GFET sensors with unmodified graphene that detect the presence and concentration of large molecules in the gating solutions.
Author Butko, V. Y.
Davydov, V. Y.
Lebedev, S. P.
Lebedev, A. A.
Eliseyev, I. A.
Butko, A. V.
Kumzerov, Y. A.
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  surname: Kumzerov
  fullname: Kumzerov, Y. A.
  organization: Ioffe Institute
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Snippet The electrical transport in graphene interfaced with different ions in solution gated graphene field effect transistors (GFETs) is the subject of active...
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SubjectTerms Amino acids
Applied physics
Aqueous solutions
Charge density
Dependence
Electric fields
Field effect transistors
Graphene
Lysine
Molecular ions
Resistance
Semiconductor devices
Sensors
Surface charge
Transistors
Water chemistry
Title Detection of lysine molecular ions in solution gated field effect transistors based on unmodified graphene
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https://www.proquest.com/docview/2466096592
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