Scan rate is 3 mV s−1 Mass of the active material is 3 mg, and g

Scan rate is 3 mV s−1. Mass of the active material is 3 mg, and graphite current collector was used (area 1 cm2) as the working electrode. As find protocol the XRD patterns of PANI(H2PtCl6·6H2O) did not show any characteristic Bragg’s reflection for metal

Pt, the PANI(HAuCl4·4H2O) was selected as a type of catalyzing electrode material, and an enzymeless H2O2 sensor was assembled by the dripping of the dispersion of PANI(HAuCl4·4H2O) on a GCE surface. Figure 9 shows the electrocatalytic responses of bare GCE and PANI(HAuCl4·4H2O)/GCE in 0.1 M PBS at pH 6.8 with and without 10 mM H2O2. It is clear that that there is no evident redox peak observed on a bare GCE which is due to the lack of substance with electrochemical activity. On the contrary, the PANI(HAuCl4·4H2O)/GCE

shows a pair of reduction (5 μA at −0.15 V) and oxidation (3 μA at EVP4593 mouse 0.15 V) peak currents. It is common that PANI selleck compound showed one pair of peaks in neutral pH environment [32]. It is also important to note that both the reduction and oxidation current for PANI(HAuCl4·4H2O)/GCE increased after addition of H2O2. These observations indicate that PANI(HAuCl4·4H2O)/GCE can act as catalysts for both the reduction and oxidation of H2O2. Figure 9 CV curves of bare GCE and PANI(HAuCl 4 ·4H 2 O)/GCE. GCE (curve a) and PANI(HAuCl4·4H2O)/GCE in 0.1 M PBS at pH 6.8 without (curve b) and with (curve c)10 mM H2O2. Scan rate is 50 mV s−1. The amperometric response of the enzymeless H2O2 amperometric sensor was investigated by successively adding H2O2 to a continuous stirring of 20 mL 0.1 M PBS at pH 6.8. Figure 10 demonstrates the typical current-time curve of the enzymeless sensor. As can be seen in Figure 10, a sharp increase in the current is observed in negative

within a response time of less than 5 s after each addition of H2O2 direction, which is lower than the amperometric response(<2 s) of enzyme biosensor based on in situ electrosynthesized PANI/Au core-shell nanocomposite [14]. However, the linear regression equation was i = −0.9256 − 0.0057[H2O2] (mM), with a correlation coefficient of 0.997 (inset b in Figure 10). This reveals that this Silibinin non-enzymatic sensor shows similar performance in terms of wide linear range compared with enzyme-based biosensor [14]. Figure 10 Amperometric response of the enzymeless sensor to H 2 O 2 . The applied potential is −0.2 V in 0.1 M PBS at pH 6.8. Inset (a) shows a magnification of the 120 to 400 s additions of H2O2, and inset (b) shows the steady-state current vs. H2O2 concentration. Conclusions In this paper, the synthesis of the polyaniline/noble metal hybrid materials by solid-state method in the presence of HAuCl4·4H2O or H2PtCl6·6H2O in the reaction system was investigated. These composites were characterized by FTIR, UV-vis, X-ray, TEM, SEM, and EDS as well as by the electrochemical measurements.

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