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含有双(氟磺酰)亚胺锂(LiFSI)和双(氟磺酰)亚胺钠(NaFSI)盐作为超级离子电解质的酰胺基深共熔溶剂,用于超级电容器应用。

Amide-based deep eutectic solvents containing LiFSI and NaFSI salts as superionic electrolytes for supercapacitor applications.

作者信息

Amara Samia, Zaidi Warda, Timperman Laure, Nikiforidis Georgios, Anouti Mérièm

机构信息

Laboratoire PCM2E, Université de Tours, Parc de Grandmont, 37200 Tours, France.

出版信息

J Chem Phys. 2021 Apr 28;154(16):164708. doi: 10.1063/5.0048392.

DOI:10.1063/5.0048392
PMID:33940800
Abstract

This work proposes two deep eutectic solvents (DESs) based on lithium bis(fluorosulfonyl)imide and sodium bis(fluorosulfonyl)imide together with N-methylacetamide and formamide as electrolytes for activated carbon (AC) electrochemical double-layer capacitors (EDLCs) at 25 °C. The formulated DESs exhibit a large electrochemical window (ΔE > 2.5 V), good thermal stability (∼150 °C) and ionic conductivity (3-4 mS cm), and moderate viscosity (11.3 mPa s). Through the Vogel-Tamman-Vulcher fitting equation, the evolution of pseudo-energy activation was delineated with respect to the nature of the H-bond donor or alkali salt. These electrolytes present a superionic character gleaned from the Walden classification, and their ionicity exceeds that of standard organic electrolytes based on similar alkali salts. The performance of the AC-based EDLC was assessed by cyclic voltammetry, electrochemical impedance spectroscopy, and galvanostatic charge/discharge, yielding 140 F g with an 8% capacity retention during 200 h of floating. Based on the physicochemical properties and electrochemical performance of these DESs, they represent a promising green-alternative electrolyte for supercapacitor applications.

摘要

本研究提出了两种基于双(氟磺酰)亚胺锂和双(氟磺酰)亚胺钠,并以N-甲基乙酰胺和甲酰胺作为电解质的深共熔溶剂(DESs),用于在25℃下的活性炭(AC)电化学双层电容器(EDLCs)。所配制的DESs具有较大的电化学窗口(ΔE>2.5V)、良好的热稳定性(约150℃)和离子电导率(3 - 4mS/cm)以及适中的粘度(11.3mPa·s)。通过Vogel-Tamman-Vulcher拟合方程,描述了伪能活化随氢键供体或碱金属盐性质的演变。这些电解质呈现出从瓦尔登分类中得出的超离子特性,并且它们的离子性超过了基于类似碱金属盐的标准有机电解质。通过循环伏安法、电化学阻抗谱和恒电流充/放电对基于AC的EDLC的性能进行了评估,在200小时的浮充过程中,其比电容为140F/g,容量保持率为8%。基于这些DESs的物理化学性质和电化学性能,它们是超级电容器应用中一种有前景的绿色替代电解质。

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