Pad printing inks based on reduced graphene oxide and various cellulose binders: Rheological properties, printability and application in electrochemical sensors

Author:

Pavličková Michaela1ORCID,Đurđić Slađana2ORCID,Hatala Michal1ORCID,Stanković Dalibor2ORCID,Švorc Ľubomír3ORCID,Veteška Peter4,Gemeiner Pavol1ORCID

Affiliation:

1. Department of Graphic Arts Technology and Applied Photochemistry, Faculty of Chemical and Food Technology Slovak University of Technology in Bratislava Bratislava Slovak Republic

2. University of Belgrade Faculty of Chemistry Belgrade Serbia

3. Institute of Analytical Chemistry, Faculty of Chemical and Food Technology Slovak University of Technology in Bratislava Bratislava Slovak Republic

4. Department of Inorganic Materials, Faculty of Chemical and Food Technology Slovak University of Technology in Bratislava Bratislava Slovak Republic

Abstract

AbstractPad printing is not a widely used printing technique, but it offers the possibility of a simple, fast, and low‐cost production of various high‐resolution electrode structures. Here, the pad‐printed reduced graphene oxide (rGO) electrodes are prepared from pad‐printable inks containing rGO powder and different concentrations of two cellulose‐based polymers: ethylcellulose and cellulose acetate butyrate. The applicability of rGO inks for pad printing is analyzed according to their rheological parameters and printability. Based on viscosity, storage (G′) and loss modulus (G″) values, 10 wt% of ethylcellulose and 15 wt% of cellulose acetate butyrate appear to be most suitable for pad printing. The effect of polymer concentration on rGO electrodes homogeneity and mechanical stability is also evaluated. Cyclic voltammetry measurements for [Fe(CN)6]3−/4− redox system are performed with rGO/cellulose inks pad‐printed onto transparent conductive oxide substrates with the best results when using ethylcellulose as a binder. Finally, the square‐wave voltammetric method assesses the viability of rGO electrodes for the fast detection of ascorbic acid (detection limit of 15 μM) coupled with satisfactory precision (4.5%, n = 5) and long‐term stability during electrochemical measurements.

Funder

Agentúra na Podporu Výskumu a Vývoja

Slovak Academic Information Agency

Slovenská technická univerzita v Bratislave

Vedecká Grantová Agentúra MŠVVaŠ SR a SAV

Publisher

Wiley

Subject

Materials Chemistry,Polymers and Plastics,Surfaces, Coatings and Films,General Chemistry

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