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将聚合物电解质限制在金属有机框架中用于安全且高性能的全固态钠金属电池

Confining Polymer Electrolyte in MOF for Safe and High-Performance All-Solid-State Sodium Metal Batteries.

作者信息

Zhang Jinfang, Wang Yuanyuan, Xia Qingbing, Li Xiaofeng, Liu Bin, Hu Tuoping, Tebyetekerwa Mike, Hu Shengliang, Knibbe Ruth, Chou Shulei

机构信息

School of Materials Science and Engineering, North University of China, 030051, Taiyuan, Shanxi, China.

School of Chemical Engineering, The University of Queensland, 4072, Brisbane, QLD, Australia.

出版信息

Angew Chem Int Ed Engl. 2024 Apr 15;63(16):e202318822. doi: 10.1002/anie.202318822. Epub 2024 Mar 12.

Abstract

Nanoconfined polymer molecules exhibit profound transformations in their properties and behaviors. Here, we present the synthesis of a polymer-in-MOF single ion conducting solid polymer electrolyte, where polymer segments are partially confined within nanopores ZIF-8 particles through Lewis acid-base interactions for solid-state sodium-metal batteries (SSMBs). The unique nanoconfinement effectively weakens Na ion coordination with the anions, facilitating the Na ion dissociation from salt. Simultaneously, the well-defined nanopores within ZIF-8 particles provide oriented and ordered migration channels for Na migration. As a result, this pioneering design allows the solid polymer electrolyte to achieve a Na ion transference number of 0.87, Na ion conductivity of 4.01×10 S cm, and an extended electrochemical voltage window up to 4.89 V vs. Na/Na. The assembled SSMBs (with NaV(PO) as the cathode) exhibit dendrite-free Na-metal deposition, promising rate capability, and stable cycling performance with 96 % capacity retention over 300 cycles. This innovative polymer-in-MOF design offers a compelling strategy for advancing high-performance and safe solid-state metal battery technologies.

摘要

纳米限域聚合物分子在其性质和行为上表现出深刻的转变。在此,我们展示了一种金属有机框架(MOF)中聚合物的单离子传导固态聚合物电解质的合成,其中聚合物链段通过路易斯酸碱相互作用部分地限制在ZIF-8颗粒的纳米孔内,用于固态钠金属电池(SSMBs)。独特的纳米限域有效地削弱了钠离子与阴离子的配位,促进了钠离子从盐中的解离。同时,ZIF-8颗粒内明确的纳米孔为钠离子迁移提供了定向且有序的迁移通道。因此,这种开创性的设计使固态聚合物电解质实现了0.87的钠离子迁移数、4.01×10⁻⁴ S cm⁻¹的钠离子电导率以及相对于Na/Na高达4.89 V的扩展电化学电压窗口。组装的固态钠金属电池(以NaV(PO₄)为正极)表现出无枝晶的钠金属沉积、良好的倍率性能以及稳定的循环性能,在300次循环中容量保持率为96%。这种创新的MOF中聚合物设计为推进高性能和安全的固态金属电池技术提供了引人注目的策略。

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