» Articles » PMID: 34568283

Single Entity Behavior of CdSe Quantum Dot Aggregates During Photoelectrochemical Detection

Overview
Journal Front Chem
Specialty Chemistry
Date 2021 Sep 27
PMID 34568283
Authors
Affiliations
Soon will be listed here.
Abstract

We demonstrate that colloidal quantum dots of CdSe and CdSe/ZnS are detected during the photooxidation of MeOH, under broad spectrum illumination (250 mW/cm). The stepwise photocurrent vs. time response corresponds to single entities adsorbing to the Pt electrode surface irreversibly. The adsorption/desorption of the QDs and the nature of the single entities is discussed. In suspensions, the QDs behave differently depending on the solvent used to suspend the materials. For MeOH, CdSe is not as stable as CdSe/ZnS under constant illumination. The photocurrent expected for single QDs is discussed. The value of the observed photocurrents, > 1 pA is due to the formation of agglomerates consistent with the collision frequency and suspension stability. The observed frequency of collisions for the stepwise photocurrents is smaller than the diffusion-limited cases expected for single QDs colliding with the electrode surface. Dynamic light scattering and scanning electron microscopy studies support the detection of aggregates. The results indicate that the ZnS layer on the CdSe/ZnS material facilitates the detection of single entities by increasing the stability of the nanomaterial. The rate of hole transfer from the QD aggregates to MeOH outcompetes the dissolution of the CdSe core under certain conditions of electron injection to the Pt electrode and in colloidal suspensions of CdSe/ZnS.

References
1.
Dasari R, Tai K, Robinson D, Stevenson K . Electrochemical monitoring of single nanoparticle collisions at mercury-modified platinum ultramicroelectrodes. ACS Nano. 2014; 8(5):4539-46. DOI: 10.1021/nn500045m. View

2.
Spittel D, Poppe J, Meerbach C, Ziegler C, Hickey S, Eychmuller A . Absolute Energy Level Positions in CdSe Nanostructures from Potential-Modulated Absorption Spectroscopy (EMAS). ACS Nano. 2017; 11(12):12174-12184. DOI: 10.1021/acsnano.7b05300. View

3.
Zigah D, Rodriguez-Lopez J, Bard A . Quantification of photoelectrogenerated hydroxyl radical on TiO2 by surface interrogation scanning electrochemical microscopy. Phys Chem Chem Phys. 2012; 14(37):12764-72. DOI: 10.1039/c2cp40907k. View

4.
Kwon S, Fan F, Bard A . Observing iridium oxide (IrO(x)) single nanoparticle collisions at ultramicroelectrodes. J Am Chem Soc. 2010; 132(38):13165-7. DOI: 10.1021/ja106054c. View

5.
Ma H, Ma W, Chen J, Liu X, Peng Y, Yang Z . Quantifying Visible-Light-Induced Electron Transfer Properties of Single Dye-Sensitized ZnO Entity for Water Splitting. J Am Chem Soc. 2018; 140(15):5272-5279. DOI: 10.1021/jacs.8b01623. View