论文标题

用于超高安全性和循环稳定性电池的准固定状态电解质

Quasi-solid-state electrolyte for ultra-high safety and cycle stability battery

论文作者

Yang, Yuewang, Liu, Sijing

论文摘要

全稳态锂电池(ASSLB)被认为是以高能量和高安全性实现下一代储能的最有前途的候选人。但是,某些瓶颈,包括高界面耐药性,不良电化学稳定性和低电导率,已阻止其进一步的发展。在这里,我们开发了一个基于PYR13FSI/LIFSI的凝胶电解液,并将其在LFP/LTO全电池系统中使用,以实现具有高安全性和循环稳定性的锂离子电池。电解质中离子液体的存在可降低PVDF-HFP聚合物基质的结晶度,增加电解质的离子电导率,并大大改善电极 - 电解质电解质界面的接触。这些优势使电池能够在室温下工作,并在1C的电流时达到123mAh/g的特定容量。通过电化学阻抗光谱证实,凝胶电解质和电极之间界面电阻的略有变化。 LFP/LTO系统中电解质的高电化学稳定性使电池具有良好的循环稳定性,并且电池在2000年循环后保持其初始容量的80%。此外,从离子液体的出色特性中受益,例如非可易度性,可忽略不计的蒸气压和高电导率,获得的基于凝胶电解质的LFP/LTO袋电池具有很高的安全性和周期稳定性。

All-solid-state lithium batteries (ASSLB) have been regarded as the most promising candidate to achieve the next generation energy storage with high energy and high safety. However, some bottlenecks, including high interfacial resistance, bad electrochemical stability, and low conductivity, have hindered its further development. Here, we developed a Pyr13FSI/LiFSI-based gel electrolyte and used it in the LFP/LTO full battery system to achieve a lithium-ion battery with high safety and cycle stability. The presence of ionic liquid in the electrolyte reduces the crystallinity of PVDF-HFP polymer matrix, increases the ion conductivity of the electrolyte, and greatly improves the electrode-electrolyte interface contact. These advantages enable the battery to work at room temperature and reach a specific capacity of 123mAh/g at the current of 1C. The slightly change in interfacial resistances between the gel electrolyte and electrodes with the increase of the cycle numbers is confirmed through electrochemical impedance spectroscopy. The high electrochemical stability of the electrolyte in the LFP/LTO system makes the battery exhibit good cycle stability, and the battery maintains 80% of its initial capacity after 2000 cycles at the current of 1C. In addition, benefitting from the excellent properties of ionic liquids, such as non-flammability, negligible vapour pressure, and high conductivity, the obtained gel electrolyte based LFP/LTO pouch battery exhibits high safety and cycle stability.

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