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Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy

[Image: see text] Degradation processes at the cathode–electrolyte interface are a major limitation in the development of high-energy lithium-ion rechargeable batteries. Deposition of protective thin coating layers on the surface of high-energy cathodes is a promising approach to control interfacial...

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Autores principales: Haber, Shira, Rosy, Saha, Arka, Brontvein, Olga, Carmieli, Raanan, Zohar, Arava, Noked, Malachi, Leskes, Michal
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2021
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8017524/
https://www.ncbi.nlm.nih.gov/pubmed/33751895
http://dx.doi.org/10.1021/jacs.1c00215
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author Haber, Shira
Rosy,
Saha, Arka
Brontvein, Olga
Carmieli, Raanan
Zohar, Arava
Noked, Malachi
Leskes, Michal
author_facet Haber, Shira
Rosy,
Saha, Arka
Brontvein, Olga
Carmieli, Raanan
Zohar, Arava
Noked, Malachi
Leskes, Michal
author_sort Haber, Shira
collection PubMed
description [Image: see text] Degradation processes at the cathode–electrolyte interface are a major limitation in the development of high-energy lithium-ion rechargeable batteries. Deposition of protective thin coating layers on the surface of high-energy cathodes is a promising approach to control interfacial reactions. However, rational design of effective protection layers is limited by the scarcity of analytical tools that can probe thin, disordered, and heterogeneous phases. Here we propose a new structural approach based on solid-state nuclear magnetic resonance spectroscopy coupled with dynamic nuclear polarization (DNP) for characterizing thin coating layers. We demonstrate the approach on an efficient alkylated Li(x)Si(y)O(z) coating layer. By utilizing different sources for DNP, exogenous from nitroxide biradicals and endogenous from paramagnetic metal ion dopants, we reveal the outer and inner surface layers of the deposited artificial interphase and construct a structural model for the coating. In addition, lithium isotope exchange experiments provide direct evidence for the function of the surface layer, shedding light on its role in the enhanced rate performance of coated cathodes. The presented methodology and results advance us in identifying the key properties of effective coatings and may enable rational design of protective and ion-conducting surface layers.
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spelling pubmed-80175242021-04-05 Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy Haber, Shira Rosy, Saha, Arka Brontvein, Olga Carmieli, Raanan Zohar, Arava Noked, Malachi Leskes, Michal J Am Chem Soc [Image: see text] Degradation processes at the cathode–electrolyte interface are a major limitation in the development of high-energy lithium-ion rechargeable batteries. Deposition of protective thin coating layers on the surface of high-energy cathodes is a promising approach to control interfacial reactions. However, rational design of effective protection layers is limited by the scarcity of analytical tools that can probe thin, disordered, and heterogeneous phases. Here we propose a new structural approach based on solid-state nuclear magnetic resonance spectroscopy coupled with dynamic nuclear polarization (DNP) for characterizing thin coating layers. We demonstrate the approach on an efficient alkylated Li(x)Si(y)O(z) coating layer. By utilizing different sources for DNP, exogenous from nitroxide biradicals and endogenous from paramagnetic metal ion dopants, we reveal the outer and inner surface layers of the deposited artificial interphase and construct a structural model for the coating. In addition, lithium isotope exchange experiments provide direct evidence for the function of the surface layer, shedding light on its role in the enhanced rate performance of coated cathodes. The presented methodology and results advance us in identifying the key properties of effective coatings and may enable rational design of protective and ion-conducting surface layers. American Chemical Society 2021-03-22 2021-03-31 /pmc/articles/PMC8017524/ /pubmed/33751895 http://dx.doi.org/10.1021/jacs.1c00215 Text en © 2021 The Authors. Published by American Chemical Society 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 Haber, Shira
Rosy,
Saha, Arka
Brontvein, Olga
Carmieli, Raanan
Zohar, Arava
Noked, Malachi
Leskes, Michal
Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title_full Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title_fullStr Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title_full_unstemmed Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title_short Structure and Functionality of an Alkylated Li(x)Si(y)O(z) Interphase for High-Energy Cathodes from DNP-ssNMR Spectroscopy
title_sort structure and functionality of an alkylated li(x)si(y)o(z) interphase for high-energy cathodes from dnp-ssnmr spectroscopy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8017524/
https://www.ncbi.nlm.nih.gov/pubmed/33751895
http://dx.doi.org/10.1021/jacs.1c00215
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