An Electroactive and Self‐Assembling Bio‐Ink, based on Protein‐Stabilized Nanoclusters and Graphene, for the Manufacture of Fully Inkjet‐Printed Paper‐Based Analytical Devices

Author:

Silvestri Alessandro1,Vázquez‐Díaz Silvia1,Misia Giuseppe2,Poletti Fabrizio3,López‐Domene Rocío14,Pavlov Valeri1,Zanardi Chiara56,Cortajarena Aitziber L.17,Prato Maurizio127ORCID

Affiliation:

1. Center for Cooperative Research in Biomaterials (CIC BiomaGUNE) Basque Research and Technology Alliance (BRTA) Donostia‐San Sebastián 20014 Spain

2. Department of Chemical and Pharmaceutical Sciences Universitá Degli Studi di Trieste Trieste 34127 Italy

3. Department of Chemical and Geological Sciences University of Modena and Reggio Emilia Modena 41125 Italy

4. POLYMAT and Applied Chemistry Department Faculty of Chemistry University of the Basque Country UPV/EHU Donostia‐San Sebastián 20018 Spain

5. Department of molecular sciences and nanosystems Ca’ Foscari University of Venice Venezia 30170 Italy

6. Institute of Organic Synthesis and Photoreactivity National Research Council of Italy Bologna 40129 Italy

7. Ikerbasque Basque Foundation for Science Bilbao 48009 Spain

Abstract

AbstractHundreds of new electrochemical sensors are reported in literature every year. However, only a few of them makes it to the market. Manufacturability, or rather the lack of it, is the parameter that dictates if new sensing technologies will remain forever in the laboratory in which they are conceived. Inkjet printing is a low‐cost and versatile technique that can facilitate the transfer of nanomaterial‐based sensors to the market. Herein, an electroactive and self‐assembling inkjet‐printable ink based on protein‐nanomaterial composites and exfoliated graphene is reported. The consensus tetratricopeptide proteins (CTPRs), used to formulate this ink, are engineered to template and coordinate electroactive metallic nanoclusters (NCs), and to self‐assemble upon drying, forming stable films. The authors demonstrate that, by incorporating graphene in the ink formulation, it is possible to dramatically improve the electrocatalytic properties of the ink, obtaining an efficient hybrid material for hydrogen peroxide (H2O2) detection. Using this bio‐ink, the authors manufactured disposable and environmentally sustainable electrochemical paper‐based analytical devices (ePADs) to detect H2O2, outperforming commercial screen‐printed platforms. Furthermore, it is demonstrated that oxidoreductase enzymes can be included in the formulation, to fully inkjet‐print enzymatic amperometric biosensors ready to use.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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