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Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors

Hybrid electrochemical capacitors have emerged as attractive energy storage option, which perfectly fill the gap between electric double-layer capacitors (EDLCs) and batteries, combining in one device the high power of the former and the high energy of the latter. We show that the charging character...

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Autores principales: Abbas, Qamar, Fitzek, Harald, Schröttner, Hartmuth, Dsoke, Sonia, Gollas, Bernhard
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6835913/
https://www.ncbi.nlm.nih.gov/pubmed/31623401
http://dx.doi.org/10.3390/nano9101413
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author Abbas, Qamar
Fitzek, Harald
Schröttner, Hartmuth
Dsoke, Sonia
Gollas, Bernhard
author_facet Abbas, Qamar
Fitzek, Harald
Schröttner, Hartmuth
Dsoke, Sonia
Gollas, Bernhard
author_sort Abbas, Qamar
collection PubMed
description Hybrid electrochemical capacitors have emerged as attractive energy storage option, which perfectly fill the gap between electric double-layer capacitors (EDLCs) and batteries, combining in one device the high power of the former and the high energy of the latter. We show that the charging characteristics of the positive carbon electrode are transformed to behave like a battery operating at nearly constant potential after it is polarized in aqueous iodide electrolyte (1 mol L(−1) NaI). Thermogravimetric analysis of the positive carbon electrode confirms the decomposition of iodides trapped inside the carbon pores in a wide temperature range from 190 °C to 425 °C, while Raman spectra of the positive electrode show characteristic peaks of I(3)(−) and I(5)(−) at 110 and 160 cm(−1), respectively. After entrapment of polyiodides in the carbon pores by polarization in 1 mol L(−1) NaI, the positive electrode retains the battery-like behavior in another cell, where it is coupled with a carbon-based negative electrode in aqueous NaNO(3) electrolyte without any redox species. This new cell (the iodide-ion capacitor) demonstrates the charging characteristics of a hybrid capacitor with capacitance values comparable to the one using 1 mol L(−1) NaI. The constant capacitance profile of the new hybrid cell in aqueous NaNO(3) for 5000 galvanostatic charge/discharge cycles at 0.5 A g(−1) shows that iodide species are confined to the positive battery-like electrode exhibiting negligible potential decay during self-discharge tests, and their shuttling to the negative electrode is prevented in this system.
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spelling pubmed-68359132019-11-25 Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors Abbas, Qamar Fitzek, Harald Schröttner, Hartmuth Dsoke, Sonia Gollas, Bernhard Nanomaterials (Basel) Article Hybrid electrochemical capacitors have emerged as attractive energy storage option, which perfectly fill the gap between electric double-layer capacitors (EDLCs) and batteries, combining in one device the high power of the former and the high energy of the latter. We show that the charging characteristics of the positive carbon electrode are transformed to behave like a battery operating at nearly constant potential after it is polarized in aqueous iodide electrolyte (1 mol L(−1) NaI). Thermogravimetric analysis of the positive carbon electrode confirms the decomposition of iodides trapped inside the carbon pores in a wide temperature range from 190 °C to 425 °C, while Raman spectra of the positive electrode show characteristic peaks of I(3)(−) and I(5)(−) at 110 and 160 cm(−1), respectively. After entrapment of polyiodides in the carbon pores by polarization in 1 mol L(−1) NaI, the positive electrode retains the battery-like behavior in another cell, where it is coupled with a carbon-based negative electrode in aqueous NaNO(3) electrolyte without any redox species. This new cell (the iodide-ion capacitor) demonstrates the charging characteristics of a hybrid capacitor with capacitance values comparable to the one using 1 mol L(−1) NaI. The constant capacitance profile of the new hybrid cell in aqueous NaNO(3) for 5000 galvanostatic charge/discharge cycles at 0.5 A g(−1) shows that iodide species are confined to the positive battery-like electrode exhibiting negligible potential decay during self-discharge tests, and their shuttling to the negative electrode is prevented in this system. MDPI 2019-10-03 /pmc/articles/PMC6835913/ /pubmed/31623401 http://dx.doi.org/10.3390/nano9101413 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abbas, Qamar
Fitzek, Harald
Schröttner, Hartmuth
Dsoke, Sonia
Gollas, Bernhard
Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title_full Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title_fullStr Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title_full_unstemmed Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title_short Immobilization of Polyiodide Redox Species in Porous Carbon for Battery-Like Electrodes in Eco-Friendly Hybrid Electrochemical Capacitors
title_sort immobilization of polyiodide redox species in porous carbon for battery-like electrodes in eco-friendly hybrid electrochemical capacitors
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6835913/
https://www.ncbi.nlm.nih.gov/pubmed/31623401
http://dx.doi.org/10.3390/nano9101413
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