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用于固态钠电池的聚碳酸酯基固体聚合物电解质

Polycarbonate-Based Solid-Polymer Electrolytes for Solid-State Sodium Batteries.

作者信息

Ruoff Erick, Kmiec Steven, Manthiram Arumugam

机构信息

Materials Science and Engineering Program & Texas Materials Institute, The University of Texas at Austin, Austin, Texas, 78712, USA.

出版信息

Small. 2024 Jun;20(24):e2311839. doi: 10.1002/smll.202311839. Epub 2023 Dec 28.

DOI:10.1002/smll.202311839
PMID:38155348
Abstract

Solid-polymer electrolytes comprised of polypropylene carbonate (PPC) and varied sodium bis(fluorosulfonyl)imide (NaFSI) salt concentrations are investigated for implementation as a conductive solid polymer electrolyte into solid-state cathode composites utilizing a sodium-layered oxide active material. The ionic conductivity generally increases with NaFSI salt content, reaching ≈1 mS cm at 80 °C at the highest salt concentration (PPC:NaFSI = 0.5:1). Through an all-in-one slurry casting method, NaNiMnO cathode composites are fabricated in which the dispersed PPC electrolyte acts as the primary binder. Enabled by a bilayer polymer electrolyte system, cycling performance with the PPC cathode electrolyte is optimized with respect to salt concentration and anode material. The best cyclability is achieved with a moderate salt concentration electrolyte (PPC:NaFSI = 5:1), showcasing an initial capacity of 83 mA h g with a remarkable 80% capacity retention after 150 cycles at C/5 rate and 60 °C. The superior performance of the lower salt concentration electrolyte is attributed to better electrochemical stability, as confirmed by linear sweep voltammetry and online electrochemical mass spectrometry measurements. These results underscore the potential of carbonate-based polymer electrolytes and the importance of balancing electrolyte conductivity and stability in cell design.

摘要

研究了由聚碳酸丙烯酯(PPC)和不同浓度双(氟磺酰)亚胺钠(NaFSI)盐组成的固体聚合物电解质,以将其作为导电固体聚合物电解质应用于使用钠层状氧化物活性材料的固态阴极复合材料中。离子电导率通常随NaFSI盐含量的增加而增加,在最高盐浓度(PPC:NaFSI = 0.5:1)下,80°C时达到≈1 mS cm。通过一体化浆料浇铸法制备了NaNiMnO阴极复合材料,其中分散的PPC电解质作为主要粘合剂。在双层聚合物电解质体系的作用下,PPC阴极电解质的循环性能在盐浓度和阳极材料方面得到了优化。中等盐浓度电解质(PPC:NaFSI = 5:1)实现了最佳的循环性能,在C/5倍率和60°C下,初始容量为83 mA h g,150次循环后容量保持率高达80%。线性扫描伏安法和在线电化学质谱测量证实,低盐浓度电解质的优异性能归因于更好的电化学稳定性。这些结果强调了碳酸盐基聚合物电解质的潜力以及在电池设计中平衡电解质导电性和稳定性的重要性。

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