Cu2MoS4 Nanocatalyst‐Based Electrochemical Sensor for Ofloxacin Electro‐Oxidation: Delineating the Combined Roles of Crystallinity and Morphology on the Analytical Performance

Author:

Huong Phung Thi Lan12,Anh Nguyen Tuan2ORCID,Dinh Ngo Xuan2ORCID,Phan Vu Ngoc23ORCID,Le Ly T.4ORCID,Nguyen Anh D.4,Le Anh‐Tuan25ORCID

Affiliation:

1. Graduate University of Science and Technology Vietnam Academy of Science and Technology 18 Hoang Quoc Viet 122300 Hanoi Vietnam

2. Phenikaa University Nano Institute (PHENA) Phenikaa University 152351 Yen Nghia, Ha Dong, Hanoi Vietnam

3. Faculty of Biotechnology, Chemistry and Environmental Engineering Phenikaa University 152351 Yen Nghia, Ha Dong, Hanoi Vietnam

4. University of Science and Technology of Hanoi Vietnam Academy of Science and Technology 18 Hoang Quoc Viet 122300 Hanoi Vietnam

5. Faculty of Materials Science and Engineering Phenikaa University 152351 Yen Nghia, Ha Dong, Hanoi Vietnam

Abstract

AbstractIn this study, we demonstrate the influence of crystallinity and morphology on the analytical performance of various Cu2MoS4 (CMS) nanocatalysts‐based electrochemical sensors for the high‐efficiency detection of Ofloxacin (OFX) antibiotic. The electrochemical kinetics parameters including peak current response (ΔIp), peak‐to‐peak separation (ΔEp), electrochemically active surface area (ECSA), electron‐transfer resistance (Rct), were obtained through the electrochemical analyses, which indicate the single‐crystalline nature of CMS nanomaterials (NMs) is beneficial for enhanced electron‐transfer kinetics. The morphological features and the electrochemical results for OFX detection substantiate that by tuning the tube‐like to plate‐like structures of the CMS NMs, it might noticeably enhance multiple adsorption sites and more intrinsic active catalytic sites due to the diffusion of analytes into the interstitial spaces between CMS nanoplates. As results, highly single‐crystalline and plate‐shaped morphology structures of CMS NMs would significantly enhance the electrocatalytic OFX oxidation in terms of onset potential (Eonset), Tafel slope, catalytic rate constant (kcat), and adsorption capacity (Γ). The CMS NMs‐based electrochemical sensing platform showed excellent analytical performance toward the OFX detection with two ultra‐wide linear detection concentration ranges from 0.25–100 and 100–1000 μM, a low detection limit of 0.058 μM, and an excellent electrochemical sensitivity (0.743 μA μM−1 cm−2).

Publisher

Wiley

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