Enhancing Electrochemical Non-Enzymatic Dopamine Sensing Based on Bimetallic Nickel/Cobalt Phosphide Nanosheets.
Zhi-Yuan WangZong-Ying TsaiHan Wei ChangYu-Chen TsaiPublished in: Micromachines (2024)
In this study, the successful synthesis of bimetallic nickel/cobalt phosphide nanosheets (Ni-Co-P NSs) via the hydrothermal method and the subsequent high-temperature phosphorization process were both confirmed. Ni-Co-P NSs exhibited excellent electrocatalytic activity for the electrochemical non-enzymatic DA sensing. The surface morphologies and physicochemical properties of Ni-Co-P NSs were characterized by atomic force microscopy (AFM), field-emission scanning (FESEM), field-emission transmission electron microscopy (FETEM), and X-ray diffraction (XRD). Further, the electrochemical performance was evaluated by cyclic voltammetry (CV) and differential pulse voltammetry (DPV). The metallic nature of phosphide and the synergistic effect of Ni/Co atoms in Ni-Co-P NSs provided abundant catalytic active sites for the electrochemical redox reaction of DA, which exhibited a remarkable consequence with a wide linear range from 0.3~50 μM, a high sensitivity of 2.033 µA µM -1 cm -2 , a low limit of detection of 0.016 µM, and anti-interference ability. As a result, the proposed Ni-Co-P NSs can be considered an ideal electrode material for the electrochemical non-enzymatic DA sensing.
Keyphrases
- metal organic framework
- electron microscopy
- gold nanoparticles
- label free
- reduced graphene oxide
- atomic force microscopy
- ionic liquid
- molecularly imprinted
- hydrogen peroxide
- high speed
- high temperature
- transition metal
- electron transfer
- blood pressure
- magnetic resonance
- magnetic resonance imaging
- uric acid
- mass spectrometry
- crystal structure
- sewage sludge
- highly efficient