Sensor-on-Microtips: Design and Development of Hydrothermally Grown ZnO on Micropipette Tips as a Modified Working Electrode for Detection of Glucose.

ZnO nanostructures glucose detection hydrothermal growth microtips working electrode

Journal

Micromachines
ISSN: 2072-666X
Titre abrégé: Micromachines (Basel)
Pays: Switzerland
ID NLM: 101640903

Informations de publication

Date de publication:
21 Feb 2023
Historique:
received: 14 12 2022
revised: 13 02 2023
accepted: 15 02 2023
medline: 30 3 2023
entrez: 29 3 2023
pubmed: 30 3 2023
Statut: epublish

Résumé

Miniaturization of electrochemical components has become less common in the last decade, with the focus predominantly being the design and development of state-of-the-art microelectrodes for achieving small volume analysis of samples. However, such microelectrodes involve cumbersome processing procedures to convert the base material for the required application. A potential paradigm shift in such miniaturization could be achieved by using cheaper alternatives such as plastics to build electrochemical components, such as micropipette tips made of polypropylene, which are commercially available at ease. Hence, this work presents the design of an electrochemical working electrode based upon a micropipette tip, involving minimal processing procedures. Furthermore, such a working electrode was realized by sputtering silver onto a bare micropipette tip using a radio-frequency sputtering technique, to obtain electrical contacts on the tip, followed by hydrothermal growth of ZnO, which acted as the active electrode material. The ZnO nanostructures grown on the micropipette tip were characterized for their morphology and surface properties using a scanning electron microscope (SEM), laser microscope, Raman spectrometer, and X-ray photoelectron spectrometer (XPS). The developed micropipette tip-based electrode was then used as the working electrode in a three-electrode system, wherein its electrochemical stability and properties were analyzed using cyclic voltammetry (CV). Furthermore, the above system was used to detect glucose concentrations of 10-200 µM, to evaluate its sensing properties using amperometry. The developed working electrode exhibited a sensitivity of 69.02 µA/µM cm

Identifiants

pubmed: 36984905
pii: mi14030498
doi: 10.3390/mi14030498
pmc: PMC10053005
pii:
doi:

Types de publication

Journal Article

Langues

eng

Subventions

Organisme : Japan Society for the Promotion of Science
ID : P19076
Organisme : National Research Foundation of Korea
ID : NRF-2022R1I1A1A01068997

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Auteurs

Priyannth Ramasami Sundhar Baabu (P)

School of Chemical and Biotechnology (SCBT), SASTRA Deemed University, Thanjavur 613 401, India.

Ganesh Kumar Mani (GK)

Department of Physics, Korea Advanced Institute of Science and Technology (KAIST), Daejeon 34141, Republic of Korea.
Micro/Nano Technology Center, Tokai University, Hiratsuka 259-1292, Japan.

John Bosco Balaguru Rayappan (JBB)

Centre for Nanotechnology & Advanced Biomaterials (CeNTAB), SASTRA Deemed University, Thanjavur 613 401, India.

Yuichiro Tsuyuki (Y)

Hasegawa Machinery Limited, 307 Matsuoka, Fuji-shi 416-0909, Japan.

Toshiyuki Inazu (T)

Department of Applied Chemistry, School of Engineering, Tokai University, Hiratsuka 259-1292, Japan.

Kazuyoshi Tsuchiya (K)

Micro/Nano Technology Center, Tokai University, Hiratsuka 259-1292, Japan.

Classifications MeSH