| Literature DB >> 32992477 |
Quan Pan1, Yuelin Kong2, Kuan Chen2, Mi Mao2, Xiaohui Wan1, Xiaoyan She1, Qingsong Gao1, Yu He2, Gongwu Song2.
Abstract
In this work, we report the synthesis of Cu-Ag bimetallic nanopartiles and g-C3N4 nanosheets decorated on zeolitic imidazolate framework-8 (ZIF-8) to form a Cu-Ag/g-C3N4/ZIF hybrid. The hybrid was synthesized and characterized by Transmission electron microscopy (TEM), Fourier transformed infrared (FTIR), the X-ray diffraction (XRD) and X-ray photoelectron spectroscopy (XPS). The Cu-Ag/g-C3N4/ZIF hybrid has intrinsic peroxidaselike catalytic activity towards the oxidation of TMB in the presence of H2O2. The situ synthesis of Cu-Ag bimetallic nanopartiles on 2D support such as g-C3N4 nanosheets would significantly enhance the peroxidaselike catalytic properties of individual Cu-Ag bimetallic nanopartiles and the g-C3N4 nanosheets. After loading of Cu-Ag bimetallic nanopartiles and g-C3N4 nanosheets on the ZIF-8, the hybrids exhibited superior peroxidaselike catalytic activity and good recyclability. Then, this method was applied for detecting glucose in human serum, owing the significant potential for detection of metabolites with H2O2-generation reactions.Entities:
Keywords: Cu-Ag/g-C3N4/ZIF hybrid; H2O2; colorimetric detection; glucose; nanozyme
Mesh:
Substances:
Year: 2020 PMID: 32992477 PMCID: PMC7583779 DOI: 10.3390/molecules25194432
Source DB: PubMed Journal: Molecules ISSN: 1420-3049 Impact factor: 4.411
Scheme 1Schematic diagram of synthesis of Cu-Ag/g-C3N4/ZIF hybrid and detection of glucose and H2O2.
Figure 1(a) TEM images of Cu-Ag/g-C3N4/ZIF; (b) HRTEM images of Cu-Ag/g-C3N4/ZIF; (c) XPS spectra of Cu 2p; (d) XPS spectra of Ag3d.
Figure 2(a) FTIR spectra of bulk-C3N4 and g-C3N4, (b) FT-IR spectra of ZIF-8 and Cu-Ag/g-C3N4/ZIF, (c) XRD pattern of bulk-C3N4 and g-C3N4, (d) XRD pattern of ZIF-8 and Cu-Ag/g-C3N4/ZIF.
Figure 3(a) Absorption spectra of the reaction of 0.5 mM TMB solution with different catalysts, (b) absorption spectra of TMB solution by Cu-Ag/g-C3N4/ZIF catalytic reaction with increased H2O2 concentration, (c) detection curves of H2O2 using Cu-Ag/g-C3N4/ZIF hybrid as the nanoenzyme, (d) the linear calibration plots for H2O2 detection by Cu-Ag/g-C3N4/ZIF hybrid.
Figure 4(a) Absorption spectra of TMB by Cu-Ag/g-C3N4/ZIF catalytic reaction with increased glucose concentration, (b) the linear calibration plots for glucose detection by Cu-Ag/g-C3N4/ZIF hybrid.
Comparison of the linear range and the limit of glucose detection by various nanozymes.
| Nanoenzyme | Lineary Range (μM) | Detection Limits (μM) | Ref. |
|---|---|---|---|
| Fe3O4-porphyrin compositions | 5–25 | 2.21 | [ |
| Fe3O4 nanoparticles | 50–1000 | 30 | [ |
| Fe3O4-GO compositions | 1–200 | 0.74 | [ |
| Carbon nitride | 5–100 | 1 | [ |
| Co3O4-rGO compositions | 1–100 | 1 | [ |
| Cu-Ag/g-C3N4/ZIF hybrid | 0.1–1000 | 0.01 | This work |
Figure 5Selectivity study of TMB oxidation in the presence of different glucose analogues.
Results of glucose detection in human serum samples.
| Sample | Glucometer Method (mM) | Proposed Method (mM) | Added (mM) | Total Found (mM) | Recovery (%) |
|---|---|---|---|---|---|
| 1 | 4.87 | 4.90 | 3.00 | 7.93 | 101.0% |
| 2 | 5.42 | 5.38 | 3.00 | 8.46 | 102.7% |
| 3 | 5.97 | 6.02 | 3.00 | 9.17 | 105.0% |