Cargando…

Graphene inclusion controlling conductivity and gas sorption of metal–organic framework

A general approach to prepare composite films of metal–organic frameworks and graphene has been developed. Films of copper(ii)-based HKUST-1 and HKUST-1/graphene composites were grown solvothermally on glassy carbon electrodes. The films were chemically tethered to the substrate by diazonium electro...

Descripción completa

Detalles Bibliográficos
Autores principales: Lamagni, Paolo, Pedersen, Birgitte Lodberg, Godiksen, Anita, Mossin, Susanne, Hu, Xin-Ming, Pedersen, Steen Uttrup, Daasbjerg, Kim, Lock, Nina
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9079844/
https://www.ncbi.nlm.nih.gov/pubmed/35539320
http://dx.doi.org/10.1039/c8ra02439a
_version_ 1784702647470653440
author Lamagni, Paolo
Pedersen, Birgitte Lodberg
Godiksen, Anita
Mossin, Susanne
Hu, Xin-Ming
Pedersen, Steen Uttrup
Daasbjerg, Kim
Lock, Nina
author_facet Lamagni, Paolo
Pedersen, Birgitte Lodberg
Godiksen, Anita
Mossin, Susanne
Hu, Xin-Ming
Pedersen, Steen Uttrup
Daasbjerg, Kim
Lock, Nina
author_sort Lamagni, Paolo
collection PubMed
description A general approach to prepare composite films of metal–organic frameworks and graphene has been developed. Films of copper(ii)-based HKUST-1 and HKUST-1/graphene composites were grown solvothermally on glassy carbon electrodes. The films were chemically tethered to the substrate by diazonium electrografting resulting in a large electrode coverage and good stability in solution for electrochemical studies. HKUST-1 has poor electrical conductivity, but we demonstrate that the addition of graphene to HKUST-1 partially restores the electrochemical activity of the electrodes. The enhanced activity, however, does not result in copper(ii) to copper(i) reduction in HKUST-1 at negative potentials. The materials were characterised in-depth: microscopy and grazing incidence X-ray diffraction demonstrate uniform films of crystalline HKUST-1, and Raman spectroscopy reveals that graphene is homogeneously distributed in the films. Gas sorption studies show that both HKUST-1 and HKUST-1/graphene have a large CO(2)/N(2) selectivity, but the composite has a lower surface area and CO(2) adsorption capacity in comparison with HKUST-1, while CO(2) binds stronger to the composite at low pressures. Electron paramagnetic resonance spectroscopy reveals that both monomeric and dimeric copper units are present in the materials, and that the two materials behave differently upon hydration, i.e. HKUST-1/graphene reacts slower by interaction with water. The changed gas/vapour sorption properties and the improved electrochemical activity are two independent consequences of combining graphene with HKUST-1.
format Online
Article
Text
id pubmed-9079844
institution National Center for Biotechnology Information
language English
publishDate 2018
publisher The Royal Society of Chemistry
record_format MEDLINE/PubMed
spelling pubmed-90798442022-05-09 Graphene inclusion controlling conductivity and gas sorption of metal–organic framework Lamagni, Paolo Pedersen, Birgitte Lodberg Godiksen, Anita Mossin, Susanne Hu, Xin-Ming Pedersen, Steen Uttrup Daasbjerg, Kim Lock, Nina RSC Adv Chemistry A general approach to prepare composite films of metal–organic frameworks and graphene has been developed. Films of copper(ii)-based HKUST-1 and HKUST-1/graphene composites were grown solvothermally on glassy carbon electrodes. The films were chemically tethered to the substrate by diazonium electrografting resulting in a large electrode coverage and good stability in solution for electrochemical studies. HKUST-1 has poor electrical conductivity, but we demonstrate that the addition of graphene to HKUST-1 partially restores the electrochemical activity of the electrodes. The enhanced activity, however, does not result in copper(ii) to copper(i) reduction in HKUST-1 at negative potentials. The materials were characterised in-depth: microscopy and grazing incidence X-ray diffraction demonstrate uniform films of crystalline HKUST-1, and Raman spectroscopy reveals that graphene is homogeneously distributed in the films. Gas sorption studies show that both HKUST-1 and HKUST-1/graphene have a large CO(2)/N(2) selectivity, but the composite has a lower surface area and CO(2) adsorption capacity in comparison with HKUST-1, while CO(2) binds stronger to the composite at low pressures. Electron paramagnetic resonance spectroscopy reveals that both monomeric and dimeric copper units are present in the materials, and that the two materials behave differently upon hydration, i.e. HKUST-1/graphene reacts slower by interaction with water. The changed gas/vapour sorption properties and the improved electrochemical activity are two independent consequences of combining graphene with HKUST-1. The Royal Society of Chemistry 2018-04-16 /pmc/articles/PMC9079844/ /pubmed/35539320 http://dx.doi.org/10.1039/c8ra02439a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Lamagni, Paolo
Pedersen, Birgitte Lodberg
Godiksen, Anita
Mossin, Susanne
Hu, Xin-Ming
Pedersen, Steen Uttrup
Daasbjerg, Kim
Lock, Nina
Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title_full Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title_fullStr Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title_full_unstemmed Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title_short Graphene inclusion controlling conductivity and gas sorption of metal–organic framework
title_sort graphene inclusion controlling conductivity and gas sorption of metal–organic framework
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9079844/
https://www.ncbi.nlm.nih.gov/pubmed/35539320
http://dx.doi.org/10.1039/c8ra02439a
work_keys_str_mv AT lamagnipaolo grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT pedersenbirgittelodberg grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT godiksenanita grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT mossinsusanne grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT huxinming grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT pedersensteenuttrup grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT daasbjergkim grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework
AT locknina grapheneinclusioncontrollingconductivityandgassorptionofmetalorganicframework