Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC

We theoretically analyzed the formation energy and solvation free energy of Pt(II) and Pt(IV) complexes with three types of ligands (H2O, OH−, and CF3SO3 −) in electrolyte environment under the low- and high-humidity conditions to study the Pt electrocatalyst degradation and dissolution mechanisms f...

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Main Authors: Takayoshi Ishimoto, Michihisa Koyama
Format: Article
Language:English
Published: Hindawi Limited 2012-01-01
Series:International Journal of Electrochemistry
Online Access:http://dx.doi.org/10.1155/2012/318461
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spelling doaj-bdab6467c00c45d9810ac25be4dc6ec02020-11-24T23:02:57ZengHindawi LimitedInternational Journal of Electrochemistry2090-35292090-35372012-01-01201210.1155/2012/318461318461Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFCTakayoshi Ishimoto0Michihisa Koyama1INAMORI Frontier Research Center, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, JapanINAMORI Frontier Research Center, Kyushu University, 744 Motooka, Nishi-ku, Fukuoka 819-0395, JapanWe theoretically analyzed the formation energy and solvation free energy of Pt(II) and Pt(IV) complexes with three types of ligands (H2O, OH−, and CF3SO3 −) in electrolyte environment under the low- and high-humidity conditions to study the Pt electrocatalyst degradation and dissolution mechanisms for polymer electrolyte fuel cell. To represent the low- and high-humidity conditions in perfluorosulfonic acid (PFSA) polymer electrolyte membrane, we controlled the dielectric constant based on the experimental result. We observed general tendencies that the formation energy becomes larger while the solvation free energy becomes smaller under the low-humidity condition. The degradation of Pt complex from Pt surface is indicated to be accelerated by the adsorption of the end group of PFSA polymer side chain, on the Pt surface by comparing the desorption energies of [Pt(H2O)2(OH)3(CF3SO3)] and [Pt(H2O)2(OH)4]. The [Pt(H2O)4]2+ is not formed by the proton addition reaction between Pt complexes under the low-humidity condition of PFSA environment. From the analysis of possible reaction pathways of Pt complexes, we found the influence of humidity on the reactivity of Pt complex.http://dx.doi.org/10.1155/2012/318461
collection DOAJ
language English
format Article
sources DOAJ
author Takayoshi Ishimoto
Michihisa Koyama
spellingShingle Takayoshi Ishimoto
Michihisa Koyama
Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
International Journal of Electrochemistry
author_facet Takayoshi Ishimoto
Michihisa Koyama
author_sort Takayoshi Ishimoto
title Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
title_short Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
title_full Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
title_fullStr Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
title_full_unstemmed Theoretical Study on Solubility from Pt Electrocatalyst and Reactivity in Electrolyte Environment of Pt Complex in PEFC
title_sort theoretical study on solubility from pt electrocatalyst and reactivity in electrolyte environment of pt complex in pefc
publisher Hindawi Limited
series International Journal of Electrochemistry
issn 2090-3529
2090-3537
publishDate 2012-01-01
description We theoretically analyzed the formation energy and solvation free energy of Pt(II) and Pt(IV) complexes with three types of ligands (H2O, OH−, and CF3SO3 −) in electrolyte environment under the low- and high-humidity conditions to study the Pt electrocatalyst degradation and dissolution mechanisms for polymer electrolyte fuel cell. To represent the low- and high-humidity conditions in perfluorosulfonic acid (PFSA) polymer electrolyte membrane, we controlled the dielectric constant based on the experimental result. We observed general tendencies that the formation energy becomes larger while the solvation free energy becomes smaller under the low-humidity condition. The degradation of Pt complex from Pt surface is indicated to be accelerated by the adsorption of the end group of PFSA polymer side chain, on the Pt surface by comparing the desorption energies of [Pt(H2O)2(OH)3(CF3SO3)] and [Pt(H2O)2(OH)4]. The [Pt(H2O)4]2+ is not formed by the proton addition reaction between Pt complexes under the low-humidity condition of PFSA environment. From the analysis of possible reaction pathways of Pt complexes, we found the influence of humidity on the reactivity of Pt complex.
url http://dx.doi.org/10.1155/2012/318461
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AT michihisakoyama theoreticalstudyonsolubilityfromptelectrocatalystandreactivityinelectrolyteenvironmentofptcomplexinpefc
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