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(Invited) Can a 'Bad' Salt be a Good Salt for Li Metal Batteries

机译:(被邀请的)可以是“坏”盐是Li金属电池的好盐

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Ethylene oxides (EO) based electrolytes are commonly used for their relatively good stability face to lithium metal. These ethers allow a good dissociation and solvation of lithium salts such as the commonly used LiTFSI salt. However, the EO/LiTFSI complexes if they show quite good conductivities, their transport number is quite low, and the TFSi anions do not give very good Solid electrolyte interphases (SEI) which implies quite poor performance vs lithium metal anodes. By replacing the salt by LiNO_3, we observed an outstanding improvement in the cyclability of symmetrical Li cells, even at rather high current density (i. e. above 1 mAcm~(-2)). To understand this improvement, we first compared the ionic transport properties of LiNO_3 versus LiTFSI salt in small glymes (molar mass = 240 g mol~(-1)). At 40°C, PEG laden with 1M LiNO_3 present an ionic conductivity one order of magnitude lower than LiTFSI, but the Li~+ transport number is very high at 0,87. From ab initio calculation, Raman spectroscopy and NMR, we demonstrate that LiNO_3 is only partially dissociated and tends to form dimers (or more) with lithium ion. These anionic complexes are not very mobile, which explains the lower conductivity and higher lithium ion transport number. Then, by mean of XPS and EIS, the composition and electrical properties of the SEI formed on lithium metal were obtained and compared. Finally, the lithium electrodeposits morphologies were characterized by X-Ray micro-tomography and SEM, allowing us to have all the cards in hand to explain the far better performance of the LiNO_3 salt vs LiTFSI salt.
机译:基于环氧乙烷(EO)的电解质通常用于它们对锂金属的相对良好的稳定性面。这些醚允许良好的解离和溶解锂盐,例如常用的Litfsi盐。然而,EO / LITFSI复合物如果它们显示出相当良好的导电性,其运输号码相当低,TFSI阴离子不给出非常好的固体电解质界面(SEI),这意味着锂金属阳极的性能相当差。通过用LINO_3替换盐,我们观察到对称LI细胞的可阻止性的突出改善,即使在相当高的电流密度(即e。以上1 macm〜(-2))。要了解这种改进,我们首先将Lino_3与Litfsi盐的离子传输性能进行了小甘草(摩尔质量= 240g mol〜(-1))。在40°C时,具有1M LinO_3的PEG载有离子电导率,比LITFSI低一级,但LI〜+传输数在0,87处非常高。从AB Initio计算,拉曼光谱学和NMR,我们证明LINO_3仅部分解离并倾向于与锂离子形成二聚体(或更多)。这些阴离子复合物不是非常移动,其解释了较低的导电性和更高的锂离子传输数。然后,通过XPS和EIS的平均值,获得在锂金属上形成的SEI的组成和电性能并进行比较。最后,通过X射线微型层析术和SEM表征锂电沉积形态,使我们能够手中拥有所有卡来解释LINO_3盐与LITFSI盐的更好性能。

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