Xin Li, Yong Lin, Yunyan Fan, Junjie Lu, Shaojing Lin, Xian Chen, Jianbing Ji, Wenxiang Li, Ling Zhang and Xiang Han
{"title":"使用固体聚合物/陶瓷电解质涂层来促进均匀的Li通量和锂金属电池的富liff界面","authors":"Xin Li, Yong Lin, Yunyan Fan, Junjie Lu, Shaojing Lin, Xian Chen, Jianbing Ji, Wenxiang Li, Ling Zhang and Xiang Han","doi":"10.1039/D4NJ05234J","DOIUrl":null,"url":null,"abstract":"<p >Li metal batteries have been considered promising candidates for next-generation high-energy-density batteries due to their high theoretical capacity and low redox potential. However, the uneven Li flux causes the formation of Li dendrites, and “dead lithium” caused by the reaction with the liquid electrolyte hinders their practical application. Herein, a PVDF-HFP/LiTFSI polymer electrolyte was designed and fabricated to stabilize the interfaces of the Li metal anode. LiTFSI could participate in the formation of inorganic LiF-rich interphases through preferential reduction of TFSI<small><sup>−</sup></small> to effectively restrain the growth of lithium dendrites. The PVDF-HFP/LiTFSI polymer electrolyte coating showed a uniform morphology that induced uniform Li<small><sup>+</sup></small> flux and dendrite-free Li deposition and stripping. Consequently, the polymer electrolyte-modified PE separator enabled a high rate and stable cycling performance of Li metal batteries. The PVDF-HFP/LiTFSI-modified PE separator showed an ionic conductivity of 5.7 × 10<small><sup>−4</sup></small> S cm<small><sup>−1</sup></small> with a lithium ion transference number of 0.47. Paired in Li‖Li symmetric cells, a long-duration cycling performance of 1100 h at 0.2 mA cm<small><sup>−2</sup></small> was achieved. The polarization voltage remained at 0.013 V due to a low interfacial resistance of 70.6 Ohm cm<small><sup>2</sup></small> in the Li metal anode. In Li‖LFP full cells, the polymer/ceramic electrolyte-modified separator enabled stable cycling over 700 cycles while maintaining 81% capacity retention after 500 cycles. Even at a high rate of 10C, the cell delivered a specific capacity of 74.7 mA h g<small><sup>−1</sup></small>. This work provides a new approach for developing high-performance Li metal batteries using a polymer/ceramic electrolyte-modified separator.</p>","PeriodicalId":95,"journal":{"name":"New Journal of Chemistry","volume":" 6","pages":" 2365-2371"},"PeriodicalIF":2.5000,"publicationDate":"2025-01-07","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Use of a solid polymer/ceramic electrolyte coating to promote uniform Li flux and a LiF-rich interphase for lithium metal batteries\",\"authors\":\"Xin Li, Yong Lin, Yunyan Fan, Junjie Lu, Shaojing Lin, Xian Chen, Jianbing Ji, Wenxiang Li, Ling Zhang and Xiang Han\",\"doi\":\"10.1039/D4NJ05234J\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Li metal batteries have been considered promising candidates for next-generation high-energy-density batteries due to their high theoretical capacity and low redox potential. However, the uneven Li flux causes the formation of Li dendrites, and “dead lithium” caused by the reaction with the liquid electrolyte hinders their practical application. Herein, a PVDF-HFP/LiTFSI polymer electrolyte was designed and fabricated to stabilize the interfaces of the Li metal anode. LiTFSI could participate in the formation of inorganic LiF-rich interphases through preferential reduction of TFSI<small><sup>−</sup></small> to effectively restrain the growth of lithium dendrites. The PVDF-HFP/LiTFSI polymer electrolyte coating showed a uniform morphology that induced uniform Li<small><sup>+</sup></small> flux and dendrite-free Li deposition and stripping. Consequently, the polymer electrolyte-modified PE separator enabled a high rate and stable cycling performance of Li metal batteries. 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引用次数: 0
摘要
锂金属电池因其高理论容量和低氧化还原电位被认为是下一代高能量密度电池的有前途的候选者。然而,不均匀的锂通量导致了锂枝晶的形成,与液态电解质反应产生的“死锂”阻碍了其实际应用。本文设计并制备了PVDF-HFP/LiTFSI聚合物电解质,以稳定锂金属阳极的界面。通过TFSI−的优先还原,LiTFSI能够参与无机富liff界面相的形成,有效抑制锂枝晶的生长。PVDF-HFP/LiTFSI聚合物电解质涂层形貌均匀,可诱导均匀的Li+通量和无枝晶的Li沉积和剥离。因此,聚合物电解质修饰的PE分离器使锂金属电池具有高倍率和稳定的循环性能。PVDF-HFP/ litfsi改性PE分离器的离子电导率为5.7 × 10−4 S cm−1,锂离子转移数为0.47。在Li‖Li对称电池中配对,在0.2 mA cm−2下实现了1100小时的长时间循环性能。由于Li金属阳极的界面电阻较低,为70.6 Ohm cm2,极化电压保持在0.013 V。在Li‖LFP全电池中,聚合物/陶瓷电解质改性分离器能够稳定循环超过700次,同时在500次循环后保持81%的容量保持。即使在10C的高倍率下,电池也提供了74.7 mA h g−1的比容量。本研究为利用聚合物/陶瓷电解质改性隔膜开发高性能锂金属电池提供了新的途径。
Use of a solid polymer/ceramic electrolyte coating to promote uniform Li flux and a LiF-rich interphase for lithium metal batteries
Li metal batteries have been considered promising candidates for next-generation high-energy-density batteries due to their high theoretical capacity and low redox potential. However, the uneven Li flux causes the formation of Li dendrites, and “dead lithium” caused by the reaction with the liquid electrolyte hinders their practical application. Herein, a PVDF-HFP/LiTFSI polymer electrolyte was designed and fabricated to stabilize the interfaces of the Li metal anode. LiTFSI could participate in the formation of inorganic LiF-rich interphases through preferential reduction of TFSI− to effectively restrain the growth of lithium dendrites. The PVDF-HFP/LiTFSI polymer electrolyte coating showed a uniform morphology that induced uniform Li+ flux and dendrite-free Li deposition and stripping. Consequently, the polymer electrolyte-modified PE separator enabled a high rate and stable cycling performance of Li metal batteries. The PVDF-HFP/LiTFSI-modified PE separator showed an ionic conductivity of 5.7 × 10−4 S cm−1 with a lithium ion transference number of 0.47. Paired in Li‖Li symmetric cells, a long-duration cycling performance of 1100 h at 0.2 mA cm−2 was achieved. The polarization voltage remained at 0.013 V due to a low interfacial resistance of 70.6 Ohm cm2 in the Li metal anode. In Li‖LFP full cells, the polymer/ceramic electrolyte-modified separator enabled stable cycling over 700 cycles while maintaining 81% capacity retention after 500 cycles. Even at a high rate of 10C, the cell delivered a specific capacity of 74.7 mA h g−1. This work provides a new approach for developing high-performance Li metal batteries using a polymer/ceramic electrolyte-modified separator.