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The variation in the response over the electrode surface is an important consideration for the DNA-based biosensing devices based on modified electrode interfaces.
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In this research, we have developed lable free DNA biosensors based on modified glassy carbon electrodes (GCE) with reduced graphene oxide (RGO) and carbon nanotubes (MWCNTs) for detection of DNA sequences.
An ion-exchanger electrode based on modified PPy-nanoparticles was tested in a laboratory loop.
Ion exchanger electrodes based on modified PPy nanoparticles were prepared and their applicability was tested.
Based on these modified electrodes, both voltammetric and amperometric sensors were developed for the electrochemical sensing of nitrate.
The electrochemical sensors based on the modified electrodes allowed the detection of NADH with a good linear dependence from 0.32 to 220 µM with a high sensitivity of 0.421 µA µM−1 cm−2 and a low detection limit of 0.16 µM (S/N=3).
A hydrogen peroxide (H2O2) biosensor based on DNA hemoglobin (Hb) modified electrode is described in this paper.
Subsequently, abundant amino-group functionalized assisted probes (NH2-APs) were loaded on the modified electrode based on Au-N bonding.
The CuONPs-CNFs nanocomposite modified glassy carbon electrode showed high electrocatalytic activity toward the oxidation of glucose in alkaline media and a nonenzymatic glucose sensor was constructed based on the functional nanocomposite modified electrode.
The construction and characterization of an electrochemical sensing platform based on a cationic polymer modified electrode are described in this work.
The CuONPs-CSs modified glassy carbon electrode showed enhanced electrocatalytic activity toward the oxidation of glucose in alkaline media, and a nonenzymatic glucose sensor was constructed based on the functional composite modified electrode.
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