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Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries

Solid electrolytes hold promise in safely enabling high-energy metallic sodium (Na) anodes. However, the poor Na‖solid electrolyte interfacial contact can induce Na dendrite growth and limit Na utilization, plaguing the rate performance and energy density of current solid-state Na-metal batteries (S...

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Autores principales: Li, Rui, Jiang, Daochuan, Du, Peng, Yuan, Chenbo, Cui, Xiaoyu, Tang, Qichen, Zheng, Jian, Li, Yecheng, Lu, Ke, Ren, Xiaodi, Gao, Shan, Zhan, Xiaowen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9728568/
https://www.ncbi.nlm.nih.gov/pubmed/36540829
http://dx.doi.org/10.1039/d2sc05120f
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author Li, Rui
Jiang, Daochuan
Du, Peng
Yuan, Chenbo
Cui, Xiaoyu
Tang, Qichen
Zheng, Jian
Li, Yecheng
Lu, Ke
Ren, Xiaodi
Gao, Shan
Zhan, Xiaowen
author_facet Li, Rui
Jiang, Daochuan
Du, Peng
Yuan, Chenbo
Cui, Xiaoyu
Tang, Qichen
Zheng, Jian
Li, Yecheng
Lu, Ke
Ren, Xiaodi
Gao, Shan
Zhan, Xiaowen
author_sort Li, Rui
collection PubMed
description Solid electrolytes hold promise in safely enabling high-energy metallic sodium (Na) anodes. However, the poor Na‖solid electrolyte interfacial contact can induce Na dendrite growth and limit Na utilization, plaguing the rate performance and energy density of current solid-state Na-metal batteries (SSSMBs). Herein, a simple and scalable Pb/C interlayer strategy is introduced to regulate the surface chemistry and improve Na wettability of Na(3)Zr(2)Si(2)PO(12) (NZSP) solid electrolyte. The resulting NZSP exhibits a perfect Na wettability (0° contact angle) at a record-low temperature of 120 °C, a negligible room-temperature Na‖NZSP interfacial resistance of 1.5 Ω cm(2), along with an ultralong cycle life of over 1800 h under 0.5 mA cm(−2)/0.5 mA h cm(−2) symmetric cell cycling at 55 °C. Furthermore, we unprecedentedly demonstrate in situ fabrication of weight-controlled Na anodes and explore the effect of the negative/positive capacity (N/P) ratio on the cyclability of SSSMBs. Both solid-state Na(3)V(2)(PO(4))(3) and S full cells show superior electrochemical performance at an optimal N/P ratio of 40.0. The Pb/C interlayer modification demonstrates dual functions of stabilizing the anode interface and improving Na utilization, making it a general strategy for implementing Na metal anodes in practical SSSMBs.
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spelling pubmed-97285682022-12-19 Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries Li, Rui Jiang, Daochuan Du, Peng Yuan, Chenbo Cui, Xiaoyu Tang, Qichen Zheng, Jian Li, Yecheng Lu, Ke Ren, Xiaodi Gao, Shan Zhan, Xiaowen Chem Sci Chemistry Solid electrolytes hold promise in safely enabling high-energy metallic sodium (Na) anodes. However, the poor Na‖solid electrolyte interfacial contact can induce Na dendrite growth and limit Na utilization, plaguing the rate performance and energy density of current solid-state Na-metal batteries (SSSMBs). Herein, a simple and scalable Pb/C interlayer strategy is introduced to regulate the surface chemistry and improve Na wettability of Na(3)Zr(2)Si(2)PO(12) (NZSP) solid electrolyte. The resulting NZSP exhibits a perfect Na wettability (0° contact angle) at a record-low temperature of 120 °C, a negligible room-temperature Na‖NZSP interfacial resistance of 1.5 Ω cm(2), along with an ultralong cycle life of over 1800 h under 0.5 mA cm(−2)/0.5 mA h cm(−2) symmetric cell cycling at 55 °C. Furthermore, we unprecedentedly demonstrate in situ fabrication of weight-controlled Na anodes and explore the effect of the negative/positive capacity (N/P) ratio on the cyclability of SSSMBs. Both solid-state Na(3)V(2)(PO(4))(3) and S full cells show superior electrochemical performance at an optimal N/P ratio of 40.0. The Pb/C interlayer modification demonstrates dual functions of stabilizing the anode interface and improving Na utilization, making it a general strategy for implementing Na metal anodes in practical SSSMBs. The Royal Society of Chemistry 2022-11-11 /pmc/articles/PMC9728568/ /pubmed/36540829 http://dx.doi.org/10.1039/d2sc05120f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by/3.0/
spellingShingle Chemistry
Li, Rui
Jiang, Daochuan
Du, Peng
Yuan, Chenbo
Cui, Xiaoyu
Tang, Qichen
Zheng, Jian
Li, Yecheng
Lu, Ke
Ren, Xiaodi
Gao, Shan
Zhan, Xiaowen
Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title_full Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title_fullStr Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title_full_unstemmed Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title_short Negating Na‖Na(3)Zr(2)Si(2)PO(12) interfacial resistance for dendrite-free and “Na-less” solid-state batteries
title_sort negating na‖na(3)zr(2)si(2)po(12) interfacial resistance for dendrite-free and “na-less” solid-state batteries
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9728568/
https://www.ncbi.nlm.nih.gov/pubmed/36540829
http://dx.doi.org/10.1039/d2sc05120f
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