| Literature DB >> 32796638 |
Francisco Jiménez-Fiérrez1, María Isabel González-Sánchez1, Rebeca Jiménez-Pérez1, Jesús Iniesta2, Edelmira Valero1.
Abstract
Herein, a novel electrochemical glucose biosensor based onEntities:
Keywords: activated screen-printed carbon electrodes; enzymatic biosensor; glucose; glucose oxidase; platinum nanoparticles; poly(Azure A)
Mesh:
Substances:
Year: 2020 PMID: 32796638 PMCID: PMC7472169 DOI: 10.3390/s20164489
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1Anodic linear scan voltammetry (LSV) responses of the different electrode modification steps in the absence (dashed lines) and the presence of 5 mM of H2O2 (solid lines). The measurements were performed in 0.1 M PB.
Figure 2FE-SEM images of: (A) screen-printed carbon electrodes (SPCE), (B) activated SPCE (aSPCE), (C) poly(Azure A) (PAA)-aSPCE, (D) platinum nanoparticles (PtNPs)-PAA-aSPCE, and (E) glucose oxidase (GOx)-PtNPs-PAA-aSPCEs, with a magnification of 30,000 K.
Figure 3Nyquist plots for the different steps of the working electrode modification: (A) SPCE,(B) aSPCE, (C) PAA-aSPCE, (D) PtNPs-PAA-aSPCE and (E) GOx-PtNPs-PAA-aSPCE. Electrochemical impedance spectroscopy (EIS) was recorded at 0.15 V (vs. Ag) in 1 mM Na4Fe(CN)6 (in 0.1 M KCl). Experimental conditions: stabilization time 60 s, amplitude 5 mV, and frequencies 65 kHz–10 mHz, with five points per decade. The inset in (A) shows the equivalent circuit used.
Figure 4XPS (A) O1s and (B) N1s spectra for PAA-SPCE and PAA-aSPCE. XPS (C) C1s and (D) N1s spectra for PAA-aSPCE and PtNPs-PAA-aSPCE. The insets of the respective figures show the atomic surface concentrations of the functional groups after the deconvolution of the peaks.
Figure 5Current outcome obtained by successive additions of glucose in a stirred solution (10 mL) of 100 mM PB, pH 7, at 0.2 V (vs. Ag), using a GOx-PtNPs-PAA-aSPCE. Range of glucose concentration: (A) 100−1200 µM; inset of (A), 20−200 µM; and (B) 0.1−6.5 mM. The experimental data of I vs. time from Figure 5B are shown in Figure S5 (Supplementary Material).
Electroanalytical parameters of glucose determination for a variety of enzymatic biosensors based on GOx.
| Electrode | Potential (V) | Sensitivity | LOD | Linear Range (mM) | Ref. |
|---|---|---|---|---|---|
| GOx/Fe3O4@Au/SPCE | 0.38 (vs. Ag) | 2.52 | 100.0 | 0.2–9 | [ |
| AuNCPtNf/GOx | 0.15 (vs. Ag) | 33.66 | - | 0.01–2 | [ |
| GOx-PoPD/PtNPs/PVF+ClO4−/Pt | 0.6 (vs. Ag/AgCl) | 17.40 | 18.0 | 0.06–9.64 | [ |
| GOx/PtNP/PANI/Pt | 0.56 (vs. SCE) | 96.10 | 0.7 | 0.01–8 | [ |
| MRGO/PtAuNPs/Ch-GOx/PDDA- modified hybrid electrode | 0.6 (vs. Ag/AgCl) | 17.85 | 1.0 | 0.01–8 | [ |
| Pt/rGO/P3ABA-SPCE | 0.5 (vs. Ag) | 22.01 | 44.3 | 0.25–6 | [ |
| GOx/Naf/MnO2-GNR/SPCE | 0.5 (vs. Ag/AgCl) | 56.32 | 50.0 | 0.1–1.4 | [ |
| GOD/Pt/MWNT-PANI | 0.55 (vs. SCE) | 127.77 | 1.0 | 0.003–8.2 | [ |
| PAA-VS-PANI/GPL-FePc/GOx-CH | 0.3 (vs. Ag) | 18.11 | 6.4 | 1–20 | [ |
| GOx-GO-SH-Au-SPE | −0.55 (vs. Ag) | 3.17 | 319.4 | 3–9 | [ |
| Paper-based maskless enzymatic sensor | −0.1 (vs. Ag) | 9.52 | 120.0 | 0.3–15 | [ |
| Gr/PANI/AuNPs/GOx | −0.4 (vs. Ag/AgCl) | 20.32 | 100.0 | 0.2–11.2 | [ |
| GOx-PtNPs-PAA-aSPCE | 0.2 (vs. Ag) | 42.70 | 7.6 | 0.02–2.30 | This work |
GOx/Fe3O4@Au/SPCE—GOx on Au seeds decorated on magnetic core Fe3O4 nanoparticles immobilized on a screen-printed carbon electrode. AuNCPtNf/GOx—bimetallic nanocoral Au decorated with Pt nanoflowers. GOx-PoPD/PtNPs/PVF+ClO4−/Pt—glucose biosensor based on the immobilization of glucose oxidase in an electropolymerized poly(o-phenylenediamine) film on a platinum nanoparticles-polyvinylferrocenium modified electrode. GOx/PtNP/PANI/Pt—GOx immobilized on a Pt nanoparticle/polyaniline hydrogel heterostructure. MRGO/PtAuNPs/Ch-GOx/PDDA-modified hybrid electrode—glucose oxidase onto multi-layer reduced graphene oxide sheets decorated with platinum and gold flower-like nanoparticles. Pt/rGO/P3ABA-SPCE—platinum/reduced graphene oxide/poly(3-aminobenzoic acid) nanocomposite film on a screen-printed carbon electrode. GOx/Naf/MnO2-GNR/SPCE—GOx and nafion on manganese dioxide nanoparticles decorated on graphene nanorribbons. GOD/Pt/MWNT-PANI—glucose oxidase immobilized on platinum nanoparticles onto the surface of a multi-wall carbon nanotube-polyaniline nanocomposite. PAA-VS-PANI/GPL-FePc/GOx-CH—polyacrylic acid-based conducting hydrogel incorporated with iron phthalocyanine functionalised graphene nanoplatelets and glucose oxidase. GOx-GO-SH-Au-SPE—GOx-decorated thiolated graphene modified gold-sputtered screen-printed electrode. Gr/PANI/AuNPs/GOx—graphene/polyaniline/Au nanoparticles/glucose oxidase biocomposite modified screen-printed electrode.
Determination of glucose in real samples using a reference spectrophotometric method (commercial glucose assay kit based on GOx) and the electrochemical biosensor GOx-PtNPs-PAA-aSPCE. Each sample was analyzed in triplicate. To remove the ascorbate present in the samples, an ascorbate oxidase spatula was previously introduced into the cell, and the measurements were recorded after 20 min.
| Sample | GOx-PtNPs-PAA-aSPCE | Glucose Assay Kit | Recovery (%) |
|---|---|---|---|
| Orange juice | 1.83 ± 0.12 | 1.93 ± 0.01 | 94.8 |
| Pineapple juice | 3.96 ± 0.01 | 3.76 ± 0.18 | 105.3 |
| Peach juice | 1.14 ± 0.17 | 1.13 ± 0.06 | 100.8 |
| Gamborg’s B-5 | - | 0.07 ± 0.01 | - |