金属锂
锂(药物)
电解质
相容性(地球化学)
材料科学
电池(电)
金属
化学工程
化学稳定性
离子
合理设计
纳米技术
化学
锂离子电池
无机化学
离子运输机
电化学
导电体
锂电池
电极
作者
Han Yu,Yong Chen,Tonghui Zhang,Zhenxiang Hao,Lianlian He,Weiting Ma,Ten‐Chin Wen,Shunshun Zhao,Qimin Peng,Zhenzhen Shen,Robin C.J. Wang,Guoxiu Wang,Shimou Chen
出处
期刊:Angewandte Chemie
[Wiley]
日期:2025-10-21
卷期号:64 (51): e202518384-e202518384
被引量:1
标识
DOI:10.1002/anie.202518384
摘要
Rational electrolyte design, capable of simultaneously accelerating bulk ion transport and stabilizing interfacial chemistry, is indispensable for achieving high-energy-density lithium metal batteries (LMBs). Here, we demonstrate that short-chain ether-functionalized metal-organic frameworks (S@MOFs) meet these requirements by efficiently tailoring Li⁺ coordination and reconstructing the electrode/electrolyte interphase, achieving durable interfacial ion transport kinetics. Synergistic experimental and theoretical investigations demonstrate that the S@MOF-based electrolyte features distinctive pseudosuspension characteristics, harnessing ether chemistry that affords Li-metal compatibility and Li-salt coordination in concert with MOF's abundant binding sites and ordered rigid frameworks. The resultant S@MOF-based electrolyte delivers robust thermodynamic stability across -10 to 60 °C, even in LiNi0.8Co0.1Mn0.1O2 (NCM811)||Li full-cell configurations. Under lean-electrolyte and 50 µm-thick Li-metal configurations, it achieves 92.40% capacity retention for LiCoO2||Li after 1000 cycles. Remarkably, 90.70% for quasi-solid-state NCM811||Li (500 cycles), and 93.21% for Na3V2(PO4)3||Na (3000 cycles) were obtained, confirming its broad applicability across alkali-metal battery chemistries.
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