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Cost Effective Synthesis of Graphene Nanomaterials for Non-Enzymatic Electrochemical Sensors for Glucose: A Comprehensive Review
- Source :
- Sensors, Sensors, Vol 22, Iss 355, p 355 (2022), Sensors (Basel, Switzerland)
- Publisher :
- MDPI
-
Abstract
- The high conductivity of graphene material (or its derivatives) and its very large surface area enhance the direct electron transfer, improving non-enzymatic electrochemical sensors sensitivity and its other characteristics. The offered large pores facilitate analyte transport enabling glucose detection even at very low concentration values. In the current review paper we classified the enzymeless graphene-based glucose electrocatalysts’ synthesis methods that have been followed into the last few years into four main categories: (i) direct growth of graphene (or oxides) on metallic substrates, (ii) in-situ growth of metallic nanoparticles into graphene (or oxides) matrix, (iii) laser-induced graphene electrodes and (iv) polymer functionalized graphene (or oxides) electrodes. The increment of the specific surface area and the high degree reduction of the electrode internal resistance were recognized as their common targets. Analyzing glucose electrooxidation mechanism over Cu-Co-and Ni-(oxide)/graphene (or derivative) electrocatalysts, we deduced that glucose electrochemical sensing properties, such as sensitivity, detection limit and linear detection limit, totally depend on the route of the mass and charge transport between metal(II)/metal(III); and so both (specific area and internal resistance) should have the optimum values. © 2022 by the authors. Licensee MDPI, Basel, Switzerland. Asst. Prof. Brouzgou, A., thankfully acknowledges the Research, Innovation and Excellence Structure (DEKA) of the University of Thessaly for the funding of the research program entitled: ‘Electrochemical (bio)sensors: synthesis of novel carbon monolayer-based nanoelectrodes for biomolecules detection’ and Ms Balkourani, G. (PhD student) thankfully acknowledges the Hellenic Foundation for Research and Innovation (HFRI), the PhD Fellowship grant. 25, 6816.
- Subjects :
- ELECTROCHEMICAL ELECTRODES
REDUCED GRAPHENE OXIDES
GRAPHITE
nanosheets
synthesis
Cost-Benefit Analysis
ELECTRODES
NICKEL OXIDE NANOMATERIAL
SYNTHESIS (CHEMICAL)
electrooxidation
Biosensing Techniques
Review
in-situ growth
Biochemistry
COST BENEFIT ANALYSIS
IN-SITU GROWTH
GLUCOSE
Analytical Chemistry
GRAPHENE-BASED NANOMATERIALS
COPPER OXIDES
functionalized graphene
cobalt oxide nanomaterial
metal nanoparticles
Instrumentation
COST EFFECTIVENESS
ELECTROCATALYSTS
NICKEL OXIDE
LASER INDUCED
COBALT COMPOUNDS
Oxides
direct growth
Atomic and Molecular Physics, and Optics
ELECTROCHEMICAL TECHNIQUES
oxide hybrid
FUNCTIONALIZED
COBALT OXIDE NANOMATERIAL
Graphite
GRAPHITE ELECTRODES
METALS
GRAPHENE-BASED NANOMATERIAL
glucose electrooxidation mechanism
COST-BENEFIT ANALYSIS
GLUCOSE ELECTROOXI-DATION MECHANISM
GRAPHENE
ni
POLYMER FUNCTIONALIZED
electrochemical sensor
TP1-1185
SYNTHESIS
NANOSTRUCTURES
reduced graphene oxide
DIRECT GROWTH
laser-induced
NANOMATERIAL
GENETIC PROCEDURES
composite
OXIDES
Electrical and Electronic Engineering
nickel oxide nanomaterial
Electrodes
ELECTRODE
Chemical technology
ELECTROCHEMICAL ANALYSIS
carbon
copper oxide nanomaterial
NANOSTRUCTURED MATERIALS
OXIDE
BIOSENSING TECHNIQUES
Electrochemical Techniques
SUBSTRATES
electrode
ELECTROCHEMICAL SENSORS
ELECTROOXIDATION
Nanostructures
REDUCTION
Glucose
ascorbic-acid
LASER-INDUCED
graphene-based nanomaterials
polymer functionalized
COPPER OXIDE NANOMATERIAL
REDUCED GRAPHENE OXIDE
ELECTROCHEMICAL SENSOR
Subjects
Details
- Database :
- OpenAIRE
- Journal :
- Sensors, Sensors, Vol 22, Iss 355, p 355 (2022), Sensors (Basel, Switzerland)
- Accession number :
- edsair.doi.dedup.....e665ef039fef680679b83d9eae5882a6