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纳米结构嵌段共聚物电解质中的各向异性离子扩散及电化学驱动输运

Anisotropic Ion Diffusion and Electrochemically Driven Transport in Nanostructured Block Copolymer Electrolytes.

作者信息

Timachova Ksenia, Villaluenga Irune, Cirrincione Lisa, Gobet Mallory, Bhattacharya Rajashree, Jiang Xi, Newman John, Madsen Louis A, Greenbaum Steven G, Balsara Nitash P

机构信息

Department of Chemical and Biomolecular Engineering, University of California, Berkeley , Berkeley, California, United States.

Materials Sciences Division, Lawrence Berkeley National Laboratory , Berkeley, California, United States.

出版信息

J Phys Chem B. 2018 Feb 1;122(4):1537-1544. doi: 10.1021/acs.jpcb.7b11371. Epub 2018 Jan 22.

Abstract

Nanostructured block copolymer electrolytes have the potential to enable solid-state batteries with lithium metal anodes. We present complete continuum characterization of ion transport in a lamellar polystyrene-b-poly(ethylene oxide) copolymer/lithium bis(trifluoromethanesulfonyl)imide (LiTFSI) electrolyte as a function of salt concentration. Electrochemical measurements are used to determine the Stefan-Maxwell salt diffusion coefficients [Formula: see text], [Formula: see text], and [Formula: see text]. Individual self-diffusion coefficients of the lithium- and TFSI-containing species were measured by pulsed-field gradient NMR (PFG-NMR). The NMR data indicate that salt diffusion is locally anisotropic, and this enables determination of a diffusion coefficient parallel to the lamellae, D, and a diffusion coefficient through defects in the lamellae, D. We quantify anisotropic diffusion by defining an NMR morphology factor and demonstrate that it is correlated to defect density seen by transmission electron microscopy. We find agreement between the electrochemically determined Stefan-Maxwell diffusion coefficients and the diffusion coefficient D determined by PFG-NMR. Our work indicates that the performance of nanostructured block copolymer electrolytes in batteries is strongly influenced by ion transport through defects.

摘要

纳米结构嵌段共聚物电解质有潜力实现具有锂金属负极的固态电池。我们给出了层状聚苯乙烯 - b - 聚(环氧乙烷)共聚物/双(三氟甲烷磺酰)亚胺锂(LiTFSI)电解质中离子传输随盐浓度变化的完整连续介质表征。通过电化学测量来确定斯特凡 - 麦克斯韦盐扩散系数[公式:见原文]、[公式:见原文]和[公式:见原文]。含锂和TFSI物种的各自自扩散系数通过脉冲场梯度核磁共振(PFG - NMR)进行测量。核磁共振数据表明盐扩散在局部是各向异性的,这使得能够确定平行于薄片的扩散系数D以及穿过薄片中缺陷的扩散系数D。我们通过定义一个核磁共振形态因子来量化各向异性扩散,并证明它与透射电子显微镜观察到的缺陷密度相关。我们发现电化学测定的斯特凡 - 麦克斯韦扩散系数与PFG - NMR测定的扩散系数D之间存在一致性。我们的工作表明,纳米结构嵌段共聚物电解质在电池中的性能受到通过缺陷的离子传输的强烈影响。

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