All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries
The critical factors that determine the performance and lifetime of solid-state batteries (SSBs) are driven by the electrode–electrolyte interfaces. The main challenge in fabricating all-oxide cathode composites for garnet-based SSBs has been lowering the thermal processing window in which both good...
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Royal Society of Chemistry
2020
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Online Access: | https://hdl.handle.net/1721.1/128540 |
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author | Kim, Kunjoong Rupp, Jennifer Lilia Marguerite |
author2 | Massachusetts Institute of Technology. Department of Materials Science and Engineering |
author_facet | Massachusetts Institute of Technology. Department of Materials Science and Engineering Kim, Kunjoong Rupp, Jennifer Lilia Marguerite |
author_sort | Kim, Kunjoong |
collection | MIT |
description | The critical factors that determine the performance and lifetime of solid-state batteries (SSBs) are driven by the electrode–electrolyte interfaces. The main challenge in fabricating all-oxide cathode composites for garnet-based SSBs has been lowering the thermal processing window in which both good contact and low interfacial resistance can be achieved. Here, we report an alternative ceramic processing strategy that enables the fabrication of all-oxide composite cathodes at an unusually low processing temperature without the use of extra sintering additives or a fluid electrolyte (polymer-gel or liquid electrolyte). We present specific examples of the most common LiFePO₄ and LiCoO₂ cathodes with a Li-garnet (Li₇La₃Zr₂O₁₂, LLZO) solid-electrolyte. We demonstrate an infiltration step to directly synthesize the LiCoO₂ cathode from metal salts in a porous LLZO scaffold, resulting in the formation of a composite cathode such as LiCoO₂–LLZO on top of a dense LLZO solid electrolyte at a low processing temperature of 700 °C. A promising discharge capacity of 118 mA h g−1 (3–4.05 V) with a low interfacial resistance of 62 Ohm cm2 is realized for LiCoO₂ with a lithium anode, whereas critical phase instabilities for LiFePO₄ are uncovered. Our findings encourage a move away from synthesis techniques that employ particle mixing and sintering to fabricate composites. We provide a blueprint for circumventing adverse interphase reactions according to chemistry and ceramic thermal processing budgets in the preparation of these ceramic interfaces as well as for increasing the number of reaction sites for high-performing composite cathodes for Li-garnet SSBs. In addition, the ceramic methods presented are scalable and mass manufacturable for the large-scale production of such composite cathodes for future industry. |
first_indexed | 2024-09-23T16:39:27Z |
format | Article |
id | mit-1721.1/128540 |
institution | Massachusetts Institute of Technology |
last_indexed | 2024-09-23T16:39:27Z |
publishDate | 2020 |
publisher | Royal Society of Chemistry |
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spelling | mit-1721.1/1285402022-10-03T07:28:03Z All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries Kim, Kunjoong Rupp, Jennifer Lilia Marguerite Massachusetts Institute of Technology. Department of Materials Science and Engineering Massachusetts Institute of Technology. Department of Electrical Engineering and Computer Science The critical factors that determine the performance and lifetime of solid-state batteries (SSBs) are driven by the electrode–electrolyte interfaces. The main challenge in fabricating all-oxide cathode composites for garnet-based SSBs has been lowering the thermal processing window in which both good contact and low interfacial resistance can be achieved. Here, we report an alternative ceramic processing strategy that enables the fabrication of all-oxide composite cathodes at an unusually low processing temperature without the use of extra sintering additives or a fluid electrolyte (polymer-gel or liquid electrolyte). We present specific examples of the most common LiFePO₄ and LiCoO₂ cathodes with a Li-garnet (Li₇La₃Zr₂O₁₂, LLZO) solid-electrolyte. We demonstrate an infiltration step to directly synthesize the LiCoO₂ cathode from metal salts in a porous LLZO scaffold, resulting in the formation of a composite cathode such as LiCoO₂–LLZO on top of a dense LLZO solid electrolyte at a low processing temperature of 700 °C. A promising discharge capacity of 118 mA h g−1 (3–4.05 V) with a low interfacial resistance of 62 Ohm cm2 is realized for LiCoO₂ with a lithium anode, whereas critical phase instabilities for LiFePO₄ are uncovered. Our findings encourage a move away from synthesis techniques that employ particle mixing and sintering to fabricate composites. We provide a blueprint for circumventing adverse interphase reactions according to chemistry and ceramic thermal processing budgets in the preparation of these ceramic interfaces as well as for increasing the number of reaction sites for high-performing composite cathodes for Li-garnet SSBs. In addition, the ceramic methods presented are scalable and mass manufacturable for the large-scale production of such composite cathodes for future industry. 2020-11-19T17:02:14Z 2020-11-19T17:02:14Z 2020-10 2020-06 Article http://purl.org/eprint/type/JournalArticle https://hdl.handle.net/1721.1/128540 Kim, Kun Joong and Jennifer L. M. Rupp. "All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries." Energy & Environmental Science (October 2020): doi.org/10.1039/D0EE02062A © 2020 Royal Society of Chemistry https://doi.org/10.1039/D0EE02062A Energy & Environmental Science Creative Commons Attribution Noncommercial 3.0 unported license https://creativecommons.org/licenses/by-nc/3.0/ application/pdf Royal Society of Chemistry Royal Society of Chemistry (RSC) |
spellingShingle | Kim, Kunjoong Rupp, Jennifer Lilia Marguerite All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title | All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title_full | All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title_fullStr | All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title_full_unstemmed | All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title_short | All Ceramic Cathode Composite Design and Manufacturing towards Low Interfacial Resistance for Garnet-Based Solid-State Batteries |
title_sort | all ceramic cathode composite design and manufacturing towards low interfacial resistance for garnet based solid state batteries |
url | https://hdl.handle.net/1721.1/128540 |
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