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Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated Optical Waveguides
[Image: see text] An optical impedance spectroscopy (OIS) technique based on a single-mode electro-active-integrated optical waveguide (EA-IOW) was developed to investigate electron-transfer processes of redox adsorbates. A highly sensitive single-mode EA-IOW device was used to optically follow the...
Autores principales: | , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American
Chemical
Society
2014
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983008/ https://www.ncbi.nlm.nih.gov/pubmed/24417718 http://dx.doi.org/10.1021/ac4030736 |
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author | Han, Xue Mendes, Sergio B. |
author_facet | Han, Xue Mendes, Sergio B. |
author_sort | Han, Xue |
collection | PubMed |
description | [Image: see text] An optical impedance spectroscopy (OIS) technique based on a single-mode electro-active-integrated optical waveguide (EA-IOW) was developed to investigate electron-transfer processes of redox adsorbates. A highly sensitive single-mode EA-IOW device was used to optically follow the time-dependent faradaic current originated from a submonolayer of cytochrome c undergoing redox exchanges driven by a harmonic modulation of the electric potential at several dc bias potentials and at several frequencies. To properly retrieve the faradaic current density from the ac-modulated optical signal, we introduce here a mathematical formalism that (i) accounts for intrinsic changes that invariably occur in the optical baseline of the EA-IOW device during potential modulation and (ii) provides accurate results for the electro-chemical parameters. We are able to optically reconstruct the faradaic current density profile against the dc bias potential in the working electrode, identify the formal potential, and determine the energy-width of the electron-transfer process. In addition, by combining the optically reconstructed faradaic signal with simple electrical measurements of impedance across the whole electrochemical cell and the capacitance of the electric double-layer, we are able to determine the time-constant connected to the redox reaction of the adsorbed protein assembly. For cytochrome c directly immobilized onto the indium tin oxide (ITO) surface, we measured a reaction rate constant of 26.5 s(–1). Finally, we calculate the charge-transfer resistance and pseudocapacitance associated with the electron-transfer process and show that the frequency dependence of the redox reaction of the protein submonolayer follows as expected the electrical equivalent of an RC-series admittance diagram. Above all, we show here that OIS with single-mode EA-IOW’s provide strong analytical signals that can be readily monitored even for small surface-densities of species involved in the redox process (e.g., fmol/cm(2), 0.1% of a full protein monolayer). This experimental approach, when combined with the analytical formalism described here, brings additional sensitivity, accuracy, and simplicity to electro-chemical analysis and is expected to become a useful tool in investigations of redox processes. |
format | Online Article Text |
id | pubmed-3983008 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2014 |
publisher | American
Chemical
Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-39830082014-04-15 Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated Optical Waveguides Han, Xue Mendes, Sergio B. Anal Chem [Image: see text] An optical impedance spectroscopy (OIS) technique based on a single-mode electro-active-integrated optical waveguide (EA-IOW) was developed to investigate electron-transfer processes of redox adsorbates. A highly sensitive single-mode EA-IOW device was used to optically follow the time-dependent faradaic current originated from a submonolayer of cytochrome c undergoing redox exchanges driven by a harmonic modulation of the electric potential at several dc bias potentials and at several frequencies. To properly retrieve the faradaic current density from the ac-modulated optical signal, we introduce here a mathematical formalism that (i) accounts for intrinsic changes that invariably occur in the optical baseline of the EA-IOW device during potential modulation and (ii) provides accurate results for the electro-chemical parameters. We are able to optically reconstruct the faradaic current density profile against the dc bias potential in the working electrode, identify the formal potential, and determine the energy-width of the electron-transfer process. In addition, by combining the optically reconstructed faradaic signal with simple electrical measurements of impedance across the whole electrochemical cell and the capacitance of the electric double-layer, we are able to determine the time-constant connected to the redox reaction of the adsorbed protein assembly. For cytochrome c directly immobilized onto the indium tin oxide (ITO) surface, we measured a reaction rate constant of 26.5 s(–1). Finally, we calculate the charge-transfer resistance and pseudocapacitance associated with the electron-transfer process and show that the frequency dependence of the redox reaction of the protein submonolayer follows as expected the electrical equivalent of an RC-series admittance diagram. Above all, we show here that OIS with single-mode EA-IOW’s provide strong analytical signals that can be readily monitored even for small surface-densities of species involved in the redox process (e.g., fmol/cm(2), 0.1% of a full protein monolayer). This experimental approach, when combined with the analytical formalism described here, brings additional sensitivity, accuracy, and simplicity to electro-chemical analysis and is expected to become a useful tool in investigations of redox processes. American Chemical Society 2014-01-13 2014-02-04 /pmc/articles/PMC3983008/ /pubmed/24417718 http://dx.doi.org/10.1021/ac4030736 Text en Copyright © 2014 American Chemical Society |
spellingShingle | Han, Xue Mendes, Sergio B. Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated Optical Waveguides |
title | Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated
Optical Waveguides |
title_full | Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated
Optical Waveguides |
title_fullStr | Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated
Optical Waveguides |
title_full_unstemmed | Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated
Optical Waveguides |
title_short | Optical Impedance Spectroscopy with Single-Mode Electro-Active-Integrated
Optical Waveguides |
title_sort | optical impedance spectroscopy with single-mode electro-active-integrated
optical waveguides |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3983008/ https://www.ncbi.nlm.nih.gov/pubmed/24417718 http://dx.doi.org/10.1021/ac4030736 |
work_keys_str_mv | AT hanxue opticalimpedancespectroscopywithsinglemodeelectroactiveintegratedopticalwaveguides AT mendessergiob opticalimpedancespectroscopywithsinglemodeelectroactiveintegratedopticalwaveguides |