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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Li-ion hopping conduction in highly concentrated lithium bis(fluorosulfonyl)amide/dinitrile liquid electrolytes
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Li-ion hopping conduction in highly concentrated lithium bis(fluorosulfonyl)amide/dinitrile liquid electrolytes

机译:高浓度锂双(氟磺酰基)酰胺/二腈液体电解质中的锂离子跳跃传导

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摘要

Li+ ion hopping conduction in highly concentrated solutions of lithium bis(fluorosulfonyl) amide (LiFSA) dissolved in dinitrile solvents, namely succinonitrile, glutaronitrile, and adiponitrile, was investigated. Phase behaviors of the LiFSA/dinitrile binary mixtures assessed by differential scanning calorimetry suggested that LiFSA and the dinitriles form stable solvates in a molar ratio of 1 : 2. For succinonitrile, a glass forming room temperature liquid is formed when [LiFSA]/[succinonitrile] 4 1. The corresponding glutaronitrile and adiponitrile mixtures have melting points below 60 degrees C. The self-diffusion coefficients of Li+, FSA(-), and dinitrile measured with pulsed field gradient NMR suggested that Li+ ion diffuses faster than anion and dinitrile in the liquids of composition [LiFSA]/[dinitrile] = 1/0.8, indicating emergence of Li+ ion hopping conduction. X-ray crystallography for the LiFSA-(dinitrile)(2) solvates and Raman spectroscopy for the liquids with composition [LiFSA]/[dinitrile] > 1 revealed that the two cyano groups of the dinitrile coordinate to two different Li+ ions and form solvent-bridged structures of (Li+-dinitrile-Li+). In addition, the Raman spectra suggested that ionic aggregates (Li+-FSA(-)-Li+) are formed in the liquids with composition [LiFSA]/[dinitrile] > 1. Although there is frequent ligand (dinitrile and/or anion) exchange for each Li+ ion in the liquid state, the polymeric network structures (solvent-bridged structure and ionic aggregates) restrict the facile motion of ligands because each ligand is interacting with multiple Li+ ions in the highly concentrated electrolytes. This induces the faster diffusion of the Li+ ion than that of the ligands, i. e., hopping conduction of Li+ through ligand exchange. Electrochemical measurements clarified that the [LiFSA]/[succinonitrile] = 1/0.8 electrolyte possesses a relatively high Li+ transport ability (limiting current density > 7 mA cm(-2)) thanks to the Li+ hopping conduction, regardless of its extremely high viscosity (3142 mPa s) and relatively low conductivity (0.26 mS cm(-1)) at room temperature. Furthermore, this electrolyte was shown to have a high Li+ transference number (>0.6), exhibited reversible Li metal deposition/dissolution i.e. suppression of reductive decomposition of the solvent, and could be successfully applied to graphite and LiNi1/3Mn1/3Co1/3O2 half-cells.
机译:研究了溶解在二腈溶剂中的锂双(氟磺酰基)酰胺(LiFSA)的高浓度溶液中的锂+离子跳转,即琥珀腈,戊二腈和己腈。通过差示扫描量热评估的Lifsa /二腈二元混合物的相位表明Lifsa和二腈形成摩尔比为1:2的摩尔比形成稳定的溶剂化物。对于琥珀腈,当[Lifsa] / [琥珀腈腈时,形成玻璃形成室温液体] 4 1.相应的戊二腈和己二腈混合物的熔点低于60℃。用脉冲场梯度NMR测量的Li +,FSA( - )和二腈的自扩散系数表明Li +离子扩散得比阴离子和二腈更快组合物[Lifsa] /β= 1 / 0.8的液体,表明Li +离子跳跃传导的出现。用于Lifsa-(二腈)(2)溶剂化物和拉曼光谱法的X射线晶体,用于用组合物[Lifsa] / [二腈]> 1显示二腈的两个氰基与两种不同的Li +离子进行坐标,形成溶剂 - (Li + -dinitrile-li +)的织布结构。此外,拉曼光谱表明离子聚集体(Li + -FSA( - ) - li +)在用组合物[Lifsa] / [二腈]> 1.频繁配体(二腈和/或阴离子)交换中对于液态中的每种Li +离子,聚合物网络结构(溶剂桥接结构和离子聚集体)限制配体的容纳运动,因为每个配体在高浓度的电解质中与多个Li +离子相互作用。这诱导Li +离子的速度比配体的更快扩散,I。即,通过配体交换跳跃引导Li +。电化学测量澄清了[Lifsa] / [琥珀腈] = 1 / 0.8电解质具有相对高的Li +运输能力(限制电流密度> 7 mA cm(-2)),无论其极高的粘度如何(3142MPa S)和相对低的电导率(在室温下相对低的电导率(0.26ms cm(-1))。此外,该电解质显示为具有高Li +转移数(> 0.6),表现出可逆的Li金属沉积/溶解,即抑制溶剂的还原分解,并且可以成功地应用于石墨和LINI1 / 3MN1 / 3CO1 / 3O2 -细胞。

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    Yokohama Natl Univ Dept Chem &

    Biotechnol Hodogaya Ku 79-5 Tokiwadai Yokohama Kanagawa 2408501 Japan;

    Yokohama Natl Univ Dept Chem &

    Biotechnol Hodogaya Ku 79-5 Tokiwadai Yokohama Kanagawa 2408501 Japan;

    Iwate Univ Dept Chem &

    Biol Sci Studies Chem Ueda 4-3-5 Morioka Iwate 0208551 Japan;

    Yokohama Natl Univ Dept Chem &

    Biotechnol Hodogaya Ku 79-5 Tokiwadai Yokohama Kanagawa 2408501 Japan;

    Yokohama Natl Univ Dept Chem &

    Biotechnol Hodogaya Ku 79-5 Tokiwadai Yokohama Kanagawa 2408501 Japan;

    Yokohama Natl Univ Dept Chem &

    Biotechnol Hodogaya Ku 79-5 Tokiwadai Yokohama Kanagawa 2408501 Japan;

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  • 正文语种 eng
  • 中图分类 物理学;化学;
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