TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.

This work demonstrates the effect of electrostatic interactions on the electroactivity of a persistent organic free radical. This was achieved by chemisorption of molecules of 4-azido-2,2,6,6-tetramethyl-1-piperdinyloxy (4-azido-TEMPO) onto monolayer-modified Si(100) electrodes using a two-step chem...

Full description

Bibliographic Details
Main Authors: Zhang, L., Vogel, Y., Noble, B., Gonçales, V., Darwish, N., Brun, A., Gooding, J., Wallace, G., Coote, M., Ciampi, Simone
Format: Journal Article
Published: American Chemical Society 2016
Online Access:http://hdl.handle.net/20.500.11937/33930
_version_ 1848754082524692480
author Zhang, L.
Vogel, Y.
Noble, B.
Gonçales, V.
Darwish, N.
Brun, A.
Gooding, J.
Wallace, G.
Coote, M.
Ciampi, Simone
author_facet Zhang, L.
Vogel, Y.
Noble, B.
Gonçales, V.
Darwish, N.
Brun, A.
Gooding, J.
Wallace, G.
Coote, M.
Ciampi, Simone
author_sort Zhang, L.
building Curtin Institutional Repository
collection Online Access
description This work demonstrates the effect of electrostatic interactions on the electroactivity of a persistent organic free radical. This was achieved by chemisorption of molecules of 4-azido-2,2,6,6-tetramethyl-1-piperdinyloxy (4-azido-TEMPO) onto monolayer-modified Si(100) electrodes using a two-step chemical procedure to preserve the open-shell state and hence the electroactivity of the nitroxide radical. Kinetic and thermodynamic parameters for the surface electrochemical reaction are investigated experimentally and analyzed with the aid of electrochemical digital simulations and quantum-chemical calculations of a theoretical model of the tethered TEMPO system. Interactions between the electrolyte anions and the TEMPO grafted on highly doped, i.e., metallic, electrodes can be tuned to predictably manipulate the oxidizing power of surface nitroxide/oxoammonium redox couple, hence showing the practical importance of the electrostatics on the electrolyte side of the radical monolayer. Conversely, for monolayers prepared on the poorly doped electrodes, the electrostatic interactions between the tethered TEMPO units and the semiconductor-side, i.e., space-charge, become dominant and result in drastic kinetic changes to the electroactivity of the radical monolayer as well as electrochemical nonidealities that can be explained as an increase in the self-interaction “a” parameter that leads to the Frumkin isotherm.
first_indexed 2025-11-14T08:34:45Z
format Journal Article
id curtin-20.500.11937-33930
institution Curtin University Malaysia
institution_category Local University
last_indexed 2025-11-14T08:34:45Z
publishDate 2016
publisher American Chemical Society
recordtype eprints
repository_type Digital Repository
spelling curtin-20.500.11937-339302017-09-13T15:07:14Z TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical. Zhang, L. Vogel, Y. Noble, B. Gonçales, V. Darwish, N. Brun, A. Gooding, J. Wallace, G. Coote, M. Ciampi, Simone This work demonstrates the effect of electrostatic interactions on the electroactivity of a persistent organic free radical. This was achieved by chemisorption of molecules of 4-azido-2,2,6,6-tetramethyl-1-piperdinyloxy (4-azido-TEMPO) onto monolayer-modified Si(100) electrodes using a two-step chemical procedure to preserve the open-shell state and hence the electroactivity of the nitroxide radical. Kinetic and thermodynamic parameters for the surface electrochemical reaction are investigated experimentally and analyzed with the aid of electrochemical digital simulations and quantum-chemical calculations of a theoretical model of the tethered TEMPO system. Interactions between the electrolyte anions and the TEMPO grafted on highly doped, i.e., metallic, electrodes can be tuned to predictably manipulate the oxidizing power of surface nitroxide/oxoammonium redox couple, hence showing the practical importance of the electrostatics on the electrolyte side of the radical monolayer. Conversely, for monolayers prepared on the poorly doped electrodes, the electrostatic interactions between the tethered TEMPO units and the semiconductor-side, i.e., space-charge, become dominant and result in drastic kinetic changes to the electroactivity of the radical monolayer as well as electrochemical nonidealities that can be explained as an increase in the self-interaction “a” parameter that leads to the Frumkin isotherm. 2016 Journal Article http://hdl.handle.net/20.500.11937/33930 10.1021/jacs.6b04788 American Chemical Society restricted
spellingShingle Zhang, L.
Vogel, Y.
Noble, B.
Gonçales, V.
Darwish, N.
Brun, A.
Gooding, J.
Wallace, G.
Coote, M.
Ciampi, Simone
TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title_full TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title_fullStr TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title_full_unstemmed TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title_short TEMPO Monolayers on Si(100) Electrodes: Electrostatic Effects by the Electrolyte and Semiconductor Space-Charge on the Electroactivity of a Persistent Radical.
title_sort tempo monolayers on si(100) electrodes: electrostatic effects by the electrolyte and semiconductor space-charge on the electroactivity of a persistent radical.
url http://hdl.handle.net/20.500.11937/33930