Vol. 7 No. 3 (2024)
Open Access
Peer Reviewed

CHARACTERIZATION AND ELECTROCHEMICAL BEHAVIOUR OF BORON DOPED DIAMOND IN DETECTING AMODIAQUINE

Authors

Hizkia Alpha Dewanto , Jatmoko Awali , Fadli Hizam , Keysi Devain Destiny , Irsyad Al Habib , Najwa Nabila , Murni Handayani , Yunita Triana

DOI:

10.29303/ipr.v7i3.345

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Received: Jun 10, 2024
Accepted: Sep 17, 2024
Published: Sep 17, 2024

Abstract

Amodiaquine (AQ) is an essential medicine in treating malaria. Yet, the threat of drug resistance and toxicity necessitates accurate measurement of AQ in the human body. This research determines the amodiaquine (AQ) detection performance of boron-doped diamond (BDD) working electrodes. The study utilizes different pulse velocity (DPV) methods to analyze the AQ reaction behavior of BDD. The research demonstrates the reaction mechanism: Two electrons are transferred, and irreversible oxidation reactions occur. The sensor limit of detection (LOD) is measured to determine the performance of working electrodes for AQ detection. The LOD is calculated between 0.0645 µM and 0.3 µM, and changes in analytical concentrations relative to maximum current are calculated. The LOD of the BDD electrode is 1.5×10–8 M, lower than previous research on AQ sensors, showing the effectivity of the BDD electrode as an AQ sensor.

Keywords:

Amodiaquine, Boron Doped Diamond, Limit of Detection, Sensor

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Author Biographies

Hizkia Alpha Dewanto, Institut Teknologi Kalimantan

Jatmoko Awali, Institut Teknologi Kalimantan

Fadli Hizam, Institut Teknologi Kalimantan

Keysi Devain Destiny, Institut Teknologi Kalimantan

Irsyad Al Habib, Institut Teknologi Kalimantan

Najwa Nabila, Institut Teknologi Kalimantan

Murni Handayani, National Research and Innovation Agency

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How to Cite

Dewanto, H. A., Awali, J. ., Hizam, F., Destiny, K. D., Al Habib, I., Nabila, N., … Triana, Y. (2024). CHARACTERIZATION AND ELECTROCHEMICAL BEHAVIOUR OF BORON DOPED DIAMOND IN DETECTING AMODIAQUINE. Indonesian Physical Review, 7(3), 522–537. https://doi.org/10.29303/ipr.v7i3.345

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