4.6 Article

Developing an Electrochemically Reversible Switch for Modulating the Optical Signal of Gold Nanoparticles

Journal

MOLECULES
Volume 28, Issue 17, Pages -

Publisher

MDPI
DOI: 10.3390/molecules28176233

Keywords

gold nanoparticles; nitroxide radicals; electrochemical switch; optical regulation

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This study proposes a novel approach to address the limitations of existing methods for modulating the optical properties of gold nanoparticles (AuNPs) by constructing a reversible electrochemical switch. By linking nitroxide radicals and AuNPs and tethering them to an indium tin oxide (ITO) electrode, the optical properties of AuNPs can be reversibly modulated by oxidizing/reducing the nitroxide units. This electrochemical switch presents a novel approach to control the optical properties of AuNPs and has the potential to enhance their versatility and practicality in various applications.
Gold nanoparticles (AuNPs) possess remarkable optical properties and electrical conductivity, making them highly relevant in various fields such as medical diagnoses, biological imaging, and electronic sensors. However, the existing methods for modulating the optical properties of AuNPs are often under limitations such as a high cost, the complexity of detection, a narrow range of application settings, and irreversibility. In this study, we propose a novel approach to address these challenges by constructing a reversible electrochemical switch. The switch (ITO-OMAD) involves covalently linking nitroxide radicals and AuNPs (AuNPs-NO & BULL;), followed by tethering this nanocomposite to a siloxane-derived indium tin oxide (ITO) electrode. By simply electrochemically oxidizing/reducing the nitroxide units, one is able to reversibly modulate the optical properties of AuNPs at will. The surface morphology and structure of the as-prepared ITO-OMAD electrode were characterized through scanning electron microscopy (SEM) and cyclic voltammetry (CV). SEM imaging confirmed the successful anchoring of AuNPs on the ITO electrode. Electrochemical tests performed in the three-electrode system demonstrated that the local surface plasmon resonance (LSPR) of AuNPs can be reversibly regulated by alternatively imposing & PLUSMN; 0.5V (vs. Ag/AgCl) to the modified electrode. The development of this electrochemical switch presents a novel approach to effectively control the optical properties of AuNPs. The further exploration and utilization of this reversible electrochemical switch could significantly enhance the versatility and practicality of AuNPs in numerous applications.

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