Cargando…

Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials

[Image: see text] Nanoporous graphene displays salt-dependent ion permeation. In this work, we investigate the differences in Donnan potentials arising between reservoirs, separated by a perforated graphene membrane, containing different cations. We compare the case of monovalent cations interacting...

Descripción completa

Detalles Bibliográficos
Autores principales: Ghosh, Mandakranta, Madauß, Lukas, Schleberger, Marika, Lebius, Henning, Benyagoub, Abdenacer, Wood, Jeffery A., Lammertink, Rob G. H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2020
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7346097/
https://www.ncbi.nlm.nih.gov/pubmed/32498516
http://dx.doi.org/10.1021/acs.langmuir.0c00924
_version_ 1783556333049479168
author Ghosh, Mandakranta
Madauß, Lukas
Schleberger, Marika
Lebius, Henning
Benyagoub, Abdenacer
Wood, Jeffery A.
Lammertink, Rob G. H.
author_facet Ghosh, Mandakranta
Madauß, Lukas
Schleberger, Marika
Lebius, Henning
Benyagoub, Abdenacer
Wood, Jeffery A.
Lammertink, Rob G. H.
author_sort Ghosh, Mandakranta
collection PubMed
description [Image: see text] Nanoporous graphene displays salt-dependent ion permeation. In this work, we investigate the differences in Donnan potentials arising between reservoirs, separated by a perforated graphene membrane, containing different cations. We compare the case of monovalent cations interacting with nanoporous graphene with the case of bivalent cations. This is accomplished through both measurements of membrane potential arising between two salt reservoirs at different concentrations involving a single cation (ionic potential) and between two reservoirs containing different cations at the same concentration (bi-ionic potential). In our present study, Donnan dialysis experiments involve bivalent MgCl(2), CaCl(2), and CuCl(2) as well as monovalent KCl and NH(4)Cl salts. For all salts, except CuCl(2), clear Donnan and diffusion potential plateaus were observed at low and high salt concentrations, respectively. Our observations show that the membrane potential scaled to the Nernst potential for bivalent cations has a lower value (≈50%) than for monovalent cations (≈72%) in the Donnan exclusion regime. This is likely due to the adsorption of these bivalent cations on monolayer graphene. For bivalent cations, the diffusion regime is reached at a lower ionic strength compared to the monovalent cations. For Mg(2+) and Ca(2+), the membrane potential does not seem to depend upon the type of ions in the entire ionic strength range. A similar behavior is observed for the KCl and NH(4)Cl membrane potential curves. For CuCl(2), the membrane potential curve is shifted toward lower ionic strength compared to the other two bivalent salts and the Donnan plateau is not observed at the lowest ionic strength. Bi-ionic potential measurements give further insight into the strength of specific interactions, allowing for the estimation of the relative ionic selectivities of different cations based on comparing their bi-ionic potentials. This effect of possible ion adsorption on graphene can be removed through ion exchange with monovalent salts.
format Online
Article
Text
id pubmed-7346097
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher American Chemical Society
record_format MEDLINE/PubMed
spelling pubmed-73460972020-07-10 Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials Ghosh, Mandakranta Madauß, Lukas Schleberger, Marika Lebius, Henning Benyagoub, Abdenacer Wood, Jeffery A. Lammertink, Rob G. H. Langmuir [Image: see text] Nanoporous graphene displays salt-dependent ion permeation. In this work, we investigate the differences in Donnan potentials arising between reservoirs, separated by a perforated graphene membrane, containing different cations. We compare the case of monovalent cations interacting with nanoporous graphene with the case of bivalent cations. This is accomplished through both measurements of membrane potential arising between two salt reservoirs at different concentrations involving a single cation (ionic potential) and between two reservoirs containing different cations at the same concentration (bi-ionic potential). In our present study, Donnan dialysis experiments involve bivalent MgCl(2), CaCl(2), and CuCl(2) as well as monovalent KCl and NH(4)Cl salts. For all salts, except CuCl(2), clear Donnan and diffusion potential plateaus were observed at low and high salt concentrations, respectively. Our observations show that the membrane potential scaled to the Nernst potential for bivalent cations has a lower value (≈50%) than for monovalent cations (≈72%) in the Donnan exclusion regime. This is likely due to the adsorption of these bivalent cations on monolayer graphene. For bivalent cations, the diffusion regime is reached at a lower ionic strength compared to the monovalent cations. For Mg(2+) and Ca(2+), the membrane potential does not seem to depend upon the type of ions in the entire ionic strength range. A similar behavior is observed for the KCl and NH(4)Cl membrane potential curves. For CuCl(2), the membrane potential curve is shifted toward lower ionic strength compared to the other two bivalent salts and the Donnan plateau is not observed at the lowest ionic strength. Bi-ionic potential measurements give further insight into the strength of specific interactions, allowing for the estimation of the relative ionic selectivities of different cations based on comparing their bi-ionic potentials. This effect of possible ion adsorption on graphene can be removed through ion exchange with monovalent salts. American Chemical Society 2020-06-04 2020-07-07 /pmc/articles/PMC7346097/ /pubmed/32498516 http://dx.doi.org/10.1021/acs.langmuir.0c00924 Text en Copyright © 2020 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Ghosh, Mandakranta
Madauß, Lukas
Schleberger, Marika
Lebius, Henning
Benyagoub, Abdenacer
Wood, Jeffery A.
Lammertink, Rob G. H.
Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title_full Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title_fullStr Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title_full_unstemmed Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title_short Understanding Mono- and Bivalent Ion Selectivities of Nanoporous Graphene Using Ionic and Bi-ionic Potentials
title_sort understanding mono- and bivalent ion selectivities of nanoporous graphene using ionic and bi-ionic potentials
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7346097/
https://www.ncbi.nlm.nih.gov/pubmed/32498516
http://dx.doi.org/10.1021/acs.langmuir.0c00924
work_keys_str_mv AT ghoshmandakranta understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT madaußlukas understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT schlebergermarika understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT lebiushenning understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT benyagoubabdenacer understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT woodjefferya understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials
AT lammertinkrobgh understandingmonoandbivalentionselectivitiesofnanoporousgrapheneusingionicandbiionicpotentials