Electrochemical evaluation of magnetic reduced graphene oxide nanosheet‐modified glassy carbon electrode on dopamine electrochemical sensor for Parkinson's diagnostic application

纳米片 石墨烯 化学 氧化物 化学工程 多巴胺 电极 电化学 玻璃碳 纳米技术 材料科学 循环伏安法 有机化学 神经科学 物理化学 生物 工程类
作者
Andri Hardiansyah,Gardin Muhammad Andika Saputra,Hikmat Hikmat,Yuniar Elfira Kusfarida,Ni Luh Wulan Septiani,Ahmad Randy,Angga Hermawan,Brian Yuliarto,Ting‐Yu Liu,Tetsuya Kida
出处
期刊:Journal of The Chinese Chemical Society [Wiley]
卷期号:70 (8): 1665-1682 被引量:6
标识
DOI:10.1002/jccs.202300197
摘要

Abstract Background Dopamine is an important catecholamine neurotransmitter that plays a critical function as a chemical messenger that aids in the signal transmission in the brain and other important places. Dopamine is known to play an important role in several neurological diseases such as schizophrenia and Parkinson's disease in which a key factor in the development of Parkinson's disease is abnormally lower levels of dopamine compared to normal levels. However, these methods are expensive, requires manual labor and resources, and demands large number of reagents and chemicals. Therefore, it is essential to develop dopamine detection methods that are less costly, more stable, and easier to perform. Objective To develop a magnetic reduced graphene oxide (MRGO) nanosheet‐modified glassy carbon electrode (GCE) for the electrochemical detection of dopamine. Methods Magnetic reduced graphene oxide (MRGO) nanosheet were prepared by the in situ coprecipitation of Fe 3+ and Fe 2+ in the GO solution. To prepare the MRGO nanosheet ink, 38 mg of MRGO nanosheet was mixed with 2 mg of acetylene black and 80 μL of Nafion solution (5%). The mixture was then mixed with 210 μL of deionized water and 210 μL of 2‐propanol and subjected to ultrasonication for 120 min using a sonicator to obtain a homogenous MRGO nanosheet ink. Furthermore, 3 μL of MRGO ink was dripped onto the surface of the GCE. Results MRGO consists of graphene layered tethered with the spherical Fe 3 O 4 . The oxygen‐based functional groups on the surface of MRGO could act as chemically active sites for the attachment of dopamine. The MRGO nanosheet has been proven to be an effective GCE modifier with a remarkable electroactive surface area of approximately 0.0104 cm 2 , demonstrating stable and sensitive electrochemical performance towards dopamine. Conclusions The MRGO nanosheets‐modified GCE presented a great potential as an electrocatalyst for dopamine detection, especially in the presence of interfering compounds like uric acid. By effectively discriminating dopamine and uric acid, MRGO nanosheets‐modified GCE have demonstrated a sensitive, stable, and specific electrochemical performance. This remarkable result underlines the immense potential of MRGO nanosheets‐modified GCE for real‐world applications, particularly in the medical field, where the ability to detect dopamine precisely and accurately is critical.
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