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Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes

[Image: see text] Acetonitrile has emerged as a solvent candidate for novel electrolyte formulations in metal-ion batteries and supercapacitors. It features a bright local C≡N stretch vibrational mode whose infrared (IR) signature is sensitive to battery-relevant cations (Li(+), Mg(2+), Zn(2+), Ca(2...

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Autores principales: Dereka, Bogdan, Lewis, Nicholas H. C., Keim, Jonathan H., Snyder, Scott A., Tokmakoff, Andrei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762666/
https://www.ncbi.nlm.nih.gov/pubmed/34962409
http://dx.doi.org/10.1021/acs.jpcb.1c09572
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author Dereka, Bogdan
Lewis, Nicholas H. C.
Keim, Jonathan H.
Snyder, Scott A.
Tokmakoff, Andrei
author_facet Dereka, Bogdan
Lewis, Nicholas H. C.
Keim, Jonathan H.
Snyder, Scott A.
Tokmakoff, Andrei
author_sort Dereka, Bogdan
collection PubMed
description [Image: see text] Acetonitrile has emerged as a solvent candidate for novel electrolyte formulations in metal-ion batteries and supercapacitors. It features a bright local C≡N stretch vibrational mode whose infrared (IR) signature is sensitive to battery-relevant cations (Li(+), Mg(2+), Zn(2+), Ca(2+)) both in pure form and in the presence of water admixture across a full possible range of concentrations from the dilute to the superconcentrated regime. Stationary and time-resolved IR spectroscopy thus emerges as a natural tool to study site-specific intermolecular interactions from the solvent perspective without introducing an extrinsic probe that perturbs solution morphology and may not represent the intrinsic dynamics in these electrolytes. The metal-coordinated acetonitrile, water-separated metal–acetonitrile pair, and free solvent each have a distinct vibrational signature that allows their unambiguous differentiation. The IR band frequency of the metal-coordinated acetonitrile depends on the ion charge density. To study the ion transport dynamics, it is necessary to differentiate energy-transfer processes from structural interconversions in these electrolytes. Isotope labeling the solvent is a necessary prerequisite to separate these processes. We discuss the design principles and choice of the CD(3)(13)CN label and characterize its vibrational spectroscopy in these electrolytes. The Fermi resonance between (13)C≡N and C–D stretches complicates the spectral response but does not prevent its effective utilization. Time-resolved two-dimensional (2D) IR spectroscopy can be performed on a mixture of acetonitrile isotopologues and much can be learned about the structural dynamics of various species in these formulations.
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spelling pubmed-87626662022-01-18 Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes Dereka, Bogdan Lewis, Nicholas H. C. Keim, Jonathan H. Snyder, Scott A. Tokmakoff, Andrei J Phys Chem B [Image: see text] Acetonitrile has emerged as a solvent candidate for novel electrolyte formulations in metal-ion batteries and supercapacitors. It features a bright local C≡N stretch vibrational mode whose infrared (IR) signature is sensitive to battery-relevant cations (Li(+), Mg(2+), Zn(2+), Ca(2+)) both in pure form and in the presence of water admixture across a full possible range of concentrations from the dilute to the superconcentrated regime. Stationary and time-resolved IR spectroscopy thus emerges as a natural tool to study site-specific intermolecular interactions from the solvent perspective without introducing an extrinsic probe that perturbs solution morphology and may not represent the intrinsic dynamics in these electrolytes. The metal-coordinated acetonitrile, water-separated metal–acetonitrile pair, and free solvent each have a distinct vibrational signature that allows their unambiguous differentiation. The IR band frequency of the metal-coordinated acetonitrile depends on the ion charge density. To study the ion transport dynamics, it is necessary to differentiate energy-transfer processes from structural interconversions in these electrolytes. Isotope labeling the solvent is a necessary prerequisite to separate these processes. We discuss the design principles and choice of the CD(3)(13)CN label and characterize its vibrational spectroscopy in these electrolytes. The Fermi resonance between (13)C≡N and C–D stretches complicates the spectral response but does not prevent its effective utilization. Time-resolved two-dimensional (2D) IR spectroscopy can be performed on a mixture of acetonitrile isotopologues and much can be learned about the structural dynamics of various species in these formulations. American Chemical Society 2021-12-28 2022-01-13 /pmc/articles/PMC8762666/ /pubmed/34962409 http://dx.doi.org/10.1021/acs.jpcb.1c09572 Text en © 2021 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Dereka, Bogdan
Lewis, Nicholas H. C.
Keim, Jonathan H.
Snyder, Scott A.
Tokmakoff, Andrei
Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title_full Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title_fullStr Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title_full_unstemmed Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title_short Characterization of Acetonitrile Isotopologues as Vibrational Probes of Electrolytes
title_sort characterization of acetonitrile isotopologues as vibrational probes of electrolytes
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8762666/
https://www.ncbi.nlm.nih.gov/pubmed/34962409
http://dx.doi.org/10.1021/acs.jpcb.1c09572
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