Bioelectrochemical Sensing Using Benchtop Fabricated Nanoroughened Microstructured Electrodes

Author:

González‐Martínez Eduardo1ORCID,González‐Martínez David A.1ORCID,Moran‐Mirabal Jose M.1234ORCID

Affiliation:

1. Department of Chemistry and Chemical Biology McMaster University 1280 Main Street West Hamilton Ontario L8S 4M1 Canada

2. School of Biomedical Engineering McMaster University 1280 Main Street West Hamilton Ontario L8S 4M1 Canada

3. Centre for Advanced Light Microscopy McMaster University 1280 Main Street West Hamilton Ontario L8S 4M1 Canada

4. Brockhouse Institute for Materials Research McMaster University 1280 Main Street West Hamilton Ontario L8S 4M1 Canada

Abstract

AbstractCost‐effective miniaturized electrodes that maintain a high electroactive surface area (ESA) are needed for the widespread deployment of point‐of‐care sensors. Cost‐effective methods are recently developed to fabricate nanoroughened microstructured gold electrodes (NR‐MSEs) with ultrahigh ESA. In this work, the effectiveness of NR‐MSEs for bioelectrochemical enzymatic sensors is evaluated. A glucose sensor is constructed by first casting onto NR‐MSEs a solution containing reduced graphene oxide decorated with gold nanoparticles, glucose oxidase, and glutaraldehyde, followed by a solution containing ferrocene, and a layer of chitosan to prevent the leakage of sensor components. A urea biosensor is also fabricated using Nafion as a cationic exchanger for the electropolymerization of polyaniline, followed by the deposition of a composite containing urease, bovine serum albumin, and glutaraldehyde. The limit of quantification for both biosensors is below clinically relevant concentrations of the analytes in biofluids, 0.67 mm for glucose and 1.70 mm for urea. The sensors exhibit excellent performance in complex matrixes (human blood serum and wine for glucose and human blood serum and urine for urea), with recovery for spiked analytes in the range of 92–108%. It is anticipated that NR‐MSEs will expedite the development of highly sensitive bioelectrochemical sensors for use in resource‐limited settings.

Funder

Ontario Ministry of Research and Innovation

Natural Sciences and Engineering Research Council of Canada

Canada Research Chairs

Publisher

Wiley

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