Highly Efficient CeO2–CuCrO2 Composite Nanofibers Used for Electrochemical Detection of Dopamine in Biomedical Applications

Author:

Lei Heng-Jyun12,Su Homg-Ming12,Vasu Dhanapal12ORCID,You Yu-Feng12,Chiu Te-Wei12ORCID,Vittayakorn Naratip3

Affiliation:

1. Department of Materials and Mineral Resources Engineering, National Taipei University of Technology, 1, Section 3, Taipei 106, Taiwan

2. Institute of Materials Science and Engineering, National Taipei University of Technology, No. 1, Section 3, Taipei 106, Taiwan

3. Advanced Materials Research Unit, School of Science, King Mongkut’s Institute of Technology Lad Krabang, Bangkok 10520, Thailand

Abstract

Dopamine (DA) plays a crucial role in the functioning of the human central nervous system, participating in both physiological and psychological processes. It is an important research topic in biomedical science. However, we need to constantly monitor the concentration of dopamine in the body, and the sensors required for this usually require good sensitivity in order to achieve fast and accurate measurements. In this research project, a CeO2 and CuCrO2 composite nanofiber was prepared for the electrochemical detection of dopamine. Coaxial electrospinning techniques were used to prepare CeO2–CuCrO2 composite nanofibers. The characterization techniques of X-ray diffractometer (XRD), Raman, and X-ray photoelectron spectroscopy (XPS) were used to analyze the composite’s crystal structure, vibrational bonds, and elemental composition, while SEM and TEM were used to analyze the composite’s surface structure, morphology, and microstructure. The prepared nanofiber outer layer was found to have an average thickness of 70.96 nm, average fiber diameter of 192.49 nm, and an average grain size of about ~12.5 nm. The BET analysis was applied to obtain the specific surface area (25.03 m2/gm). The proposed nanofiber-decorated disposable screen-printed carbon electrode acted as a better electrochemical sensor for the detection of dopamine. Moreover, the electrocatalyst had a better limit of detection, 36 nM with a linear range of 10 to 100 μM, and its sensitivity was 6.731 μA μM−1 cm−2. In addition, the proposed electrocatalyst was successfully applied to real-time potential applications, namely, to the analysis of human urine samples in order to obtain better recovery results.

Funder

the Ministry of Science and Technology of Taiwan

the National Science and Technology Council of Taiwan

the National Taipei University of Technology—King Mongkut’s Institute of Technology Ladkrabang Joint Research Program

Publisher

MDPI AG

Subject

Mechanics of Materials,Biomaterials,Civil and Structural Engineering,Ceramics and Composites

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