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Beilstein J. Nanotechnol. 2024, 15, 1522–1535, doi:10.3762/bjnano.15.120
Figure 1: (a) XRD pattern and (b) N2 adsorption/desorption isotherms of the (Cu)(Fe)BTC sample.
Figure 2: Full-scan (a) and high-resolution C 1s (b), O 1s (c), Fe 2p (d), and Cu 2p (e) XPS spectra of the (...
Figure 3: TEM image of (Cu)(Fe)BTC sample.
Figure 4: SEM images of (Cu)(Fe)BTC@CPE (a) and EDX maps of (Cu)(Fe)BTC@CPE (b).
Figure 5: Nyquist plots of the modified electrodes in 0.1 M KCl solution containing 5 mM [Fe(CN)6]3−/4−.
Figure 6: (a) Cyclic voltammograms of (Cu)(Fe)BTC@CPE and CPE electrodes in a 200 µM ENR solution in PBS at s...
Figure 7: The impact of electrode composition the peak current of 1 µM enrofloxacin.
Figure 8: Square wave voltammograms of 1 µM ENR in different electrolytes.
Figure 9: (a) SW-AdSV measurements of (Cu)(Fe)BTC@CPE in 1 µM ENR/PBS solution at different pH values from 6 ...
Figure 10: The relationship between ENR peak currents and accumulation time at different concentrations of ENR...
Figure 11: SW-AdSV measurements of successive measurements obtained in 0.20 µM ENR solution using electrodes (...
Figure 12: SW-AdSV measurements of ENR and calibration curves for (a) 0.005–0.100 µM (tacc of 600 s), (b) 0.1–...
Figure 13: Influence of (a) inorganic ions and (b) organic compounds on the ENR signal.