Murugavel Kathiresan, Abishek Kumar Lakshmi, Natarajan Angulakshmi, Sara Garcia-Ballesteros, Federico Bella, A. Manuel Stephan
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引用次数: 0
摘要
尽管锂离子电池(LIBs)凭借其高能量密度、单节电压、长保质期等吸引人的特性在便携式电子设备中占据了前所未有的地位,但其在电动汽车中的应用仍需要在功率密度、更好的安全性和长行驶里程的快速充电能力(即充电15分钟)方面进一步改进。锂离子电池快速充电的挑战在于锂离子在体积和固体电极/电解质界面中的低输运,这主要受电解质离子电导率的影响。因此,电解质工程对提高锂离子电池的快速充电能力起着至关重要的作用。在这里,我们合成了一种新的丙酸基紫胶,它含有一个4,4 ' -联吡啶单元和一个带正电荷的末端羧基,它限制了PF6 -阴离子,并由于静电排斥加速了锂离子的迁移,从而提高了整体的速率能力。在电解液中添加0.25%紫素的LiFePO4/Li电池在6C下的放电容量为110 mAh g-1,即使在500次循环后仍保持95%的容量。添加紫外光不仅提高了电化学性能,而且显著缩短了自熄时间。
Viologen as an Electrolyte Additive for Extreme Fast Charging of Lithium-Ion Batteries
Although lithium-ion batteries (LIBs) have found an unprecedented place among portable electronic devices owing to their attractive properties such as high energy density, single cell voltage, long shelf-life, etc., their application in electric vehicles still requires further improvements in terms of power density, better safety, and fast-charging ability (i.e., 15 min charging) for long driving range. The challenges of fast charging of LIBs have limitations such as low lithium-ion transport in the bulk and solid electrode/electrolyte interfaces, which are mainly influenced by the ionic conductivity of the electrolyte. Therefore, electrolyte engineering plays a key role in enhancing the fast-charging capability of LIBs. Here, we synthesize a novel propionic acid-based viologen that contains a 4,4′-bipyridinium unit and a terminal carboxylic acid group with positive charges that confine PF6‒ anions and accelerate the migration of lithium ions due to electrostatic repulsion, thus increasing the overall rate capability. The LiFePO4/Li cells with 0.25% of viologen added to the electrolyte show a discharge capacity of 110 mAh g‒1 at 6C with 95% of capacity retention even after 500 cycles. The added viologen not only enhances the electrochemical properties, but also significantly reduces the self-extinguishing time.