Cargando…
Mitigating Interfacial Mismatch between Lithium Metal and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic Interlayer
[Image: see text] Solid-state lithium batteries are generally considered as the next-generation battery technology that benefits from inherent nonflammable solid electrolytes and safe harnessing of high-capacity lithium metal. Among various solid-electrolyte candidates, cubic garnet-type Li(7)La(3)Z...
Autores principales: | , , , , , , , , , , , , |
---|---|
Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2022
|
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8790721/ https://www.ncbi.nlm.nih.gov/pubmed/35098044 http://dx.doi.org/10.1021/acsaem.1c03157 |
_version_ | 1784640078038958080 |
---|---|
author | Baniya, Abiral Gurung, Ashim Pokharel, Jyotshna Chen, Ke Pathak, Rajesh Lamsal, Buddhi Sagar Ghimire, Nabin Bobba, Raja Sekhar Rahman, Sheikh Ifatur Mabrouk, Sally Smirnova, Alevtina L. Xu, Kang Qiao, Quinn |
author_facet | Baniya, Abiral Gurung, Ashim Pokharel, Jyotshna Chen, Ke Pathak, Rajesh Lamsal, Buddhi Sagar Ghimire, Nabin Bobba, Raja Sekhar Rahman, Sheikh Ifatur Mabrouk, Sally Smirnova, Alevtina L. Xu, Kang Qiao, Quinn |
author_sort | Baniya, Abiral |
collection | PubMed |
description | [Image: see text] Solid-state lithium batteries are generally considered as the next-generation battery technology that benefits from inherent nonflammable solid electrolytes and safe harnessing of high-capacity lithium metal. Among various solid-electrolyte candidates, cubic garnet-type Li(7)La(3)Zr(2)O(12) ceramics hold superiority due to their high ionic conductivity (10(–3) to 10(–4) S cm(−1)) and good chemical stability against lithium metal. However, practical deployment of solid-state batteries based on such garnet-type materials has been constrained by poor interfacing between lithium and garnet that displays high impedance and uneven current distribution. Herein, we propose a facile and effective strategy to significantly reduce this interfacial mismatch by modifying the surface of such garnet-type solid electrolyte with a thin layer of silicon nitride (Si(3)N(4)). This interfacial layer ensures an intimate contact with lithium due to its lithiophilic nature and formation of an intermediate lithium–metal alloy. The interfacial resistance experiences an exponential drop from 1197 to 84.5 Ω cm(2). Lithium symmetrical cells with Si(3)N(4)-modified garnet exhibited low overpotential and long-term stable plating/stripping cycles at room temperature compared to bare garnet. Furthermore, a hybrid solid-state battery with Si(3)N(4)-modified garnet sandwiched between lithium metal anode and LiFePO(4) cathode was demonstrated to operate with high cycling efficiency, excellent rate capability, and good electrochemical stability. This work represents a significant advancement toward use of garnet solid electrolytes in lithium metal batteries for the next-generation energy storage devices. |
format | Online Article Text |
id | pubmed-8790721 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2022 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-87907212022-01-26 Mitigating Interfacial Mismatch between Lithium Metal and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic Interlayer Baniya, Abiral Gurung, Ashim Pokharel, Jyotshna Chen, Ke Pathak, Rajesh Lamsal, Buddhi Sagar Ghimire, Nabin Bobba, Raja Sekhar Rahman, Sheikh Ifatur Mabrouk, Sally Smirnova, Alevtina L. Xu, Kang Qiao, Quinn ACS Appl Energy Mater [Image: see text] Solid-state lithium batteries are generally considered as the next-generation battery technology that benefits from inherent nonflammable solid electrolytes and safe harnessing of high-capacity lithium metal. Among various solid-electrolyte candidates, cubic garnet-type Li(7)La(3)Zr(2)O(12) ceramics hold superiority due to their high ionic conductivity (10(–3) to 10(–4) S cm(−1)) and good chemical stability against lithium metal. However, practical deployment of solid-state batteries based on such garnet-type materials has been constrained by poor interfacing between lithium and garnet that displays high impedance and uneven current distribution. Herein, we propose a facile and effective strategy to significantly reduce this interfacial mismatch by modifying the surface of such garnet-type solid electrolyte with a thin layer of silicon nitride (Si(3)N(4)). This interfacial layer ensures an intimate contact with lithium due to its lithiophilic nature and formation of an intermediate lithium–metal alloy. The interfacial resistance experiences an exponential drop from 1197 to 84.5 Ω cm(2). Lithium symmetrical cells with Si(3)N(4)-modified garnet exhibited low overpotential and long-term stable plating/stripping cycles at room temperature compared to bare garnet. Furthermore, a hybrid solid-state battery with Si(3)N(4)-modified garnet sandwiched between lithium metal anode and LiFePO(4) cathode was demonstrated to operate with high cycling efficiency, excellent rate capability, and good electrochemical stability. This work represents a significant advancement toward use of garnet solid electrolytes in lithium metal batteries for the next-generation energy storage devices. American Chemical Society 2022-01-07 2022-01-24 /pmc/articles/PMC8790721/ /pubmed/35098044 http://dx.doi.org/10.1021/acsaem.1c03157 Text en © 2022 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 | Baniya, Abiral Gurung, Ashim Pokharel, Jyotshna Chen, Ke Pathak, Rajesh Lamsal, Buddhi Sagar Ghimire, Nabin Bobba, Raja Sekhar Rahman, Sheikh Ifatur Mabrouk, Sally Smirnova, Alevtina L. Xu, Kang Qiao, Quinn Mitigating Interfacial Mismatch between Lithium Metal and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic Interlayer |
title | Mitigating
Interfacial Mismatch between Lithium Metal
and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic
Interlayer |
title_full | Mitigating
Interfacial Mismatch between Lithium Metal
and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic
Interlayer |
title_fullStr | Mitigating
Interfacial Mismatch between Lithium Metal
and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic
Interlayer |
title_full_unstemmed | Mitigating
Interfacial Mismatch between Lithium Metal
and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic
Interlayer |
title_short | Mitigating
Interfacial Mismatch between Lithium Metal
and Garnet-Type Solid Electrolyte by Depositing Metal Nitride Lithiophilic
Interlayer |
title_sort | mitigating
interfacial mismatch between lithium metal
and garnet-type solid electrolyte by depositing metal nitride lithiophilic
interlayer |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8790721/ https://www.ncbi.nlm.nih.gov/pubmed/35098044 http://dx.doi.org/10.1021/acsaem.1c03157 |
work_keys_str_mv | AT baniyaabiral mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT gurungashim mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT pokhareljyotshna mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT chenke mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT pathakrajesh mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT lamsalbuddhisagar mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT ghimirenabin mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT bobbarajasekhar mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT rahmansheikhifatur mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT mabrouksally mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT smirnovaalevtinal mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT xukang mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer AT qiaoquinn mitigatinginterfacialmismatchbetweenlithiummetalandgarnettypesolidelectrolytebydepositingmetalnitridelithiophilicinterlayer |