Publication detail

Covalently modified enzymatic 3D-printed bioelectrode

WANG, L. PUMERA, M.

Original Title

Covalently modified enzymatic 3D-printed bioelectrode

Type

journal article in Web of Science

Language

English

Original Abstract

Three-dimensional (3D) printing has showed great potential for the construction of electrochemical sensor devices. However, reported 3D-printed biosensors are usually constructed by physical adsorption and needed immobilizing reagents on the surface of functional materials. To construct the 3D-printed biosensors, the simple modification of the 3D-printed device by non-expert is mandatory to take advantage of the remote, distributed 3D printing manufacturing. Here, a 3D-printed electrode was prepared by fused deposition modeling (FDM) 3D printing technique and activated by chemical and electrochemical methods. A glucose oxidase-based 3D-printed nanocarbon electrode was prepared by covalent linkage method to an enzyme on the surface of the 3D-printed electrode to enable biosensing. X-ray photoelectron spectroscopy and scanning electron microscopy were used to characterize the glucose oxidase-based biosensor. Direct electrochemistry glucose oxidase-based biosensor with higher stability was then chosen to detect the two biomarkers, hydrogen peroxide and glucose by chronoamperometry. The prepared glucose oxidase-based biosensor was further used for the detection of glucose in samples of apple cider. The covalently linked glucose oxidase 3D-printed nanocarbon electrode as a biosensor showed excellent stability. This work can open new doors for the covalent modification of 3D-printed electrodes in other electrochemistry fields such as biosensors, energy, and biocatalysis.

Keywords

3D-printed electrode; Electrochemical detection; Covalent modification; Hydrogen peroxide; Glucose

Authors

WANG, L.; PUMERA, M.

Released

1. 11. 2021

Publisher

SPRINGER WIEN

Location

WIEN

ISBN

1436-5073

Periodical

MICROCHIMICA ACTA

Year of study

188

Number

11

State

Republic of Austria

Pages from

374-1

Pages to

374-8

Pages count

8

URL