Non-enzymatic biosensor based on F,S-doped carbon dots/copper nanoarchitecture applied in the simultaneous electrochemical determination of NADH, dopamine, and uric acid in plasma.
Octávio P L de SouzaDaniel Y TibaJoao H A FerreiraLaura C LiebThiago C CanevariPublished in: The Analyst (2024)
This work presents the synthesis and characterization of an innovative F,S-doped carbon dots/CuONPs hybrid nanostructure obtained by a direct mixture between F,S-doped carbon dots obtained electrochemically and copper nitrate alcoholic solution. The hybrid nanostructures synthesized were characterized by absorption spectroscopy in the Ultraviolet region (UV-vis), high-resolution transmission electron microscopy (HRTEM), X-ray photoelectron spectroscopy (XPS), and different electrochemical techniques. The fluoride and sulfur-doped carbon dots/CuONPs nanostructures were used to prepare a non-enzymatic biosensor on a printed carbon electrode, exhibiting excellent electrocatalytic activity for the simultaneous determination of NADH, dopamine, and uric acid in the presence of ascorbic acid with a detection limit of 20, 80, and 400 nmol L -1 , respectively. The non-enzymatic biosensors were also used to determine NADH, dopamine, and uric acid in plasma, and they did not suffer significant interference from each other.
Keyphrases
- uric acid
- quantum dots
- high resolution
- label free
- metabolic syndrome
- simultaneous determination
- gold nanoparticles
- electron microscopy
- metal organic framework
- sensitive detection
- hydrogen peroxide
- highly efficient
- solid phase extraction
- tandem mass spectrometry
- molecularly imprinted
- liquid chromatography tandem mass spectrometry
- visible light
- solid state
- high performance liquid chromatography
- drinking water
- single molecule
- oxide nanoparticles
- ultra high performance liquid chromatography
- mass spectrometry
- liquid chromatography
- reduced graphene oxide
- magnetic resonance
- liver injury
- carbon nanotubes
- gas chromatography
- real time pcr