Cargando…

Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production

The one-step vacuum carbonization synthesis of a platinum nano-catalyst embedded in a microporous heterocarbon (Pt@cPIM) is demonstrated. A nitrogen-rich polymer of an intrinsic microporosity (PIM) precursor is impregnated with PtCl(6)(2−) to give (after vacuum carbonization at 700 °C) a nitrogen-co...

Descripción completa

Detalles Bibliográficos
Autores principales: Adamik, Robert K., Hernández-Ibáñez, Naiara, Iniesta, Jesus, Edwards, Jennifer K., Howe, Alexander G. R., Armstrong, Robert D., Taylor, Stuart H., Roldan, Alberto, Rong, Yuanyang, Malpass-Evans, Richard, Carta, Mariolino, McKeown, Neil B., He, Daping, Marken, Frank
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6071093/
https://www.ncbi.nlm.nih.gov/pubmed/30021972
http://dx.doi.org/10.3390/nano8070542
_version_ 1783343805473226752
author Adamik, Robert K.
Hernández-Ibáñez, Naiara
Iniesta, Jesus
Edwards, Jennifer K.
Howe, Alexander G. R.
Armstrong, Robert D.
Taylor, Stuart H.
Roldan, Alberto
Rong, Yuanyang
Malpass-Evans, Richard
Carta, Mariolino
McKeown, Neil B.
He, Daping
Marken, Frank
author_facet Adamik, Robert K.
Hernández-Ibáñez, Naiara
Iniesta, Jesus
Edwards, Jennifer K.
Howe, Alexander G. R.
Armstrong, Robert D.
Taylor, Stuart H.
Roldan, Alberto
Rong, Yuanyang
Malpass-Evans, Richard
Carta, Mariolino
McKeown, Neil B.
He, Daping
Marken, Frank
author_sort Adamik, Robert K.
collection PubMed
description The one-step vacuum carbonization synthesis of a platinum nano-catalyst embedded in a microporous heterocarbon (Pt@cPIM) is demonstrated. A nitrogen-rich polymer of an intrinsic microporosity (PIM) precursor is impregnated with PtCl(6)(2−) to give (after vacuum carbonization at 700 °C) a nitrogen-containing heterocarbon with embedded Pt nanoparticles of typically 1–4 nm diameter (with some particles up to 20 nm diameter). The Brunauer-Emmett-Teller (BET) surface area of this hybrid material is 518 m(2) g(−1) (with a cumulative pore volume of 1.1 cm(3) g(−1)) consistent with the surface area of the corresponding platinum-free heterocarbon. In electrochemical experiments, the heterocarbon-embedded nano-platinum is observed as reactive towards hydrogen oxidation, but essentially non-reactive towards bigger molecules during methanol oxidation or during oxygen reduction. Therefore, oxygen reduction under electrochemical conditions is suggested to occur mainly via a 2-electron pathway on the outer carbon shell to give H(2)O(2). Kinetic selectivity is confirmed in exploratory catalysis experiments in the presence of H(2) gas (which is oxidized on Pt) and O(2) gas (which is reduced on the heterocarbon surface) to result in the direct formation of H(2)O(2).
format Online
Article
Text
id pubmed-6071093
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-60710932018-08-09 Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production Adamik, Robert K. Hernández-Ibáñez, Naiara Iniesta, Jesus Edwards, Jennifer K. Howe, Alexander G. R. Armstrong, Robert D. Taylor, Stuart H. Roldan, Alberto Rong, Yuanyang Malpass-Evans, Richard Carta, Mariolino McKeown, Neil B. He, Daping Marken, Frank Nanomaterials (Basel) Article The one-step vacuum carbonization synthesis of a platinum nano-catalyst embedded in a microporous heterocarbon (Pt@cPIM) is demonstrated. A nitrogen-rich polymer of an intrinsic microporosity (PIM) precursor is impregnated with PtCl(6)(2−) to give (after vacuum carbonization at 700 °C) a nitrogen-containing heterocarbon with embedded Pt nanoparticles of typically 1–4 nm diameter (with some particles up to 20 nm diameter). The Brunauer-Emmett-Teller (BET) surface area of this hybrid material is 518 m(2) g(−1) (with a cumulative pore volume of 1.1 cm(3) g(−1)) consistent with the surface area of the corresponding platinum-free heterocarbon. In electrochemical experiments, the heterocarbon-embedded nano-platinum is observed as reactive towards hydrogen oxidation, but essentially non-reactive towards bigger molecules during methanol oxidation or during oxygen reduction. Therefore, oxygen reduction under electrochemical conditions is suggested to occur mainly via a 2-electron pathway on the outer carbon shell to give H(2)O(2). Kinetic selectivity is confirmed in exploratory catalysis experiments in the presence of H(2) gas (which is oxidized on Pt) and O(2) gas (which is reduced on the heterocarbon surface) to result in the direct formation of H(2)O(2). MDPI 2018-07-18 /pmc/articles/PMC6071093/ /pubmed/30021972 http://dx.doi.org/10.3390/nano8070542 Text en © 2018 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
Adamik, Robert K.
Hernández-Ibáñez, Naiara
Iniesta, Jesus
Edwards, Jennifer K.
Howe, Alexander G. R.
Armstrong, Robert D.
Taylor, Stuart H.
Roldan, Alberto
Rong, Yuanyang
Malpass-Evans, Richard
Carta, Mariolino
McKeown, Neil B.
He, Daping
Marken, Frank
Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title_full Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title_fullStr Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title_full_unstemmed Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title_short Platinum Nanoparticle Inclusion into a Carbonized Polymer of Intrinsic Microporosity: Electrochemical Characteristics of a Catalyst for Electroless Hydrogen Peroxide Production
title_sort platinum nanoparticle inclusion into a carbonized polymer of intrinsic microporosity: electrochemical characteristics of a catalyst for electroless hydrogen peroxide production
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6071093/
https://www.ncbi.nlm.nih.gov/pubmed/30021972
http://dx.doi.org/10.3390/nano8070542
work_keys_str_mv AT adamikrobertk platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT hernandezibaneznaiara platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT iniestajesus platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT edwardsjenniferk platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT howealexandergr platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT armstrongrobertd platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT taylorstuarth platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT roldanalberto platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT rongyuanyang platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT malpassevansrichard platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT cartamariolino platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT mckeownneilb platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT hedaping platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction
AT markenfrank platinumnanoparticleinclusionintoacarbonizedpolymerofintrinsicmicroporosityelectrochemicalcharacteristicsofacatalystforelectrolesshydrogenperoxideproduction