Features of Silver-Nanoparticle-Based Electrochemical Sensors. Shape and Size Effects

The effect of the shape and size of silver nanoparticles on the electrochemical characteristics of sensors based on them is considered by the example of the hydrogen peroxide (H 2 O 2 ) determination. A sodium-borohydride-based electrochemical sensor yields a one-fold increase in the analytical sign...

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Veröffentlicht in:Nanobiotechnology Reports (Online) 2023-04, Vol.18 (2), p.251-256
Hauptverfasser: Perevezentseva, D. O., Gorchakov, E. V., Vaytulevich, E. A.
Format: Artikel
Sprache:eng
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Zusammenfassung:The effect of the shape and size of silver nanoparticles on the electrochemical characteristics of sensors based on them is considered by the example of the hydrogen peroxide (H 2 O 2 ) determination. A sodium-borohydride-based electrochemical sensor yields a one-fold increase in the analytical signal when H 2 O 2 in a concentration of 1 × 10 ‒7 M is added. A sensor based on the finest (0.5–17.5 nm) spherical silver nanoparticles obtained using two reducing agents (sodium borohydride and sodium citrate) simultaneously makes it possible to increase the H 2 O 2 -determination sensitivity by six orders of magnitude (the detection limit is 0.16 × 10 –13 M). The detectable H 2 O 2 -concentration range varies within half an order of magnitude and is (0.8‒3.0) × 10 ‒13 M. A sensor based on silver nanoparticles of various shapes 10‒55 nm in size obtained using sodium citrate also exhibits an increase in the H 2 O 2 -determination sensitivity by six orders of magnitude (the detection limit is 0.74 × 10 –13 M). This sensor has a detectable H 2 O 2 concentration range within an order of magnitude: (1.0‒10.0) × 10 ‒13 M. The causes of the different sensitivities and detectable H 2 O 2 -concentration ranges for the electrochemical sensors are discussed depending on the size and shape of silver nanoparticles. The mechanism of the interaction of adsorbed oxygen with silver nanoparticles on the sensor surface is proposed.
ISSN:2635-1676
1995-0780
2635-1684
1995-0799
DOI:10.1134/S2635167623700106