Stable Electrochemical Measurements of Platinum Screen-Printed Electrodes Modified with Vertical ZnO Nanorods for Bacterial Detection

Author:

Nguyen Thi Hong Phuoc1,Tonezzer Matteo1,Dang Thi Thanh Le1ORCID,Vu Quang Khue2,Tran Quang Huy3ORCID,Nguyen Duc Hoa1ORCID,Nguyen Van Hieu45

Affiliation:

1. International Training Institute of Materials Science (ITIMS), Hanoi University of Science and Technology (HUST), 1-Dai Co Viet Road, Hanoi, Vietnam

2. AIST, Hanoi University of Science and Technology (HUST), 1-Dai Co Viet Road, Hanoi, Vietnam

3. National Institute of Hygiene and Epidemiology, 1 Yersin Street, Hanoi, Vietnam

4. Faculty of Electrical and Electronic Engineering, Phenikaa Institute for Advanced Study (PIAS), Phenikaa University, Yen Nghia, Ha Dong District, Hanoi, Vietnam

5. Phenikaa Research and Technology Institute (PRATI), A&A Green Phoenix Group, 167 Hoang Ngan, Hanoi, Vietnam

Abstract

The study is aimed at investigating the stability of electrochemical and biosensing properties of ZnO nanorod-based platinum screen-printed electrodes (SPEs) applied for detection of bacterial pathogens. The platinum SPEs were designed and patterned according to standard photolithography and lift-off process on a silicon wafer. ZnO nanorods (NRs) were grown on the platinum working electrode by the hydrothermal method, whereas Salmonella polyclonal antibodies were selected and immobilized onto ZnO NR surface via a crosslinking process. Morphological and structural characteristics of ZnO NRs were investigated by scanning electron microscopy (SEM), transmission electron microscopy (TEM), and X-ray diffraction (XRD). The results showed that the ZnO NRs were grown vertically on platinum electrodes with a diameter around 20-200 nm and a length of 5-7 μm. These modified electrodes were applied for detection of Salmonella enteritidis at a concentration of 103 cfu/mL by electrochemical measurements including cyclic voltammetry (CV) and electrochemical impedance spectroscopy (EIS). The ZnO NR-modified platinum electrodes could detect Salmonella bacteria well with stable measurements, and the signal to noise ratio was much higher than that of 3 : 1. This study indicated that ZnO NR-modified platinum SPEs could be potential for the development of biochips for electrochemical detection of bacterial pathogens.

Funder

National Foundation for Science and Technology Development

Publisher

Hindawi Limited

Subject

General Materials Science

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