A systematically comparative study on LiNO3 and Li2SO4 aqueous electrolytes for electrochemical double-layer capacitors

被引:51
|
作者
Jiang, Jianbo [1 ,2 ]
Liu, Beibei [1 ]
Liu, Guiyu [1 ]
Qian, Dong [1 ,4 ]
Yang, Chunming [5 ]
Li, Junhua [3 ]
机构
[1] Cent S Univ, Coll Chem & Chem Engn, Hunan Prov Key Lab Chem Power Resources, Changsha 410083, Hunan, Peoples R China
[2] Jishou Univ, Coll Chem & Chem Engn, Jishou 416000, Peoples R China
[3] Hengyang Normal Univ, Coll Chem & Mat Sci, Key Lab Funct Met Organ Cpds Hunan Prov, Hengyang 421008, Peoples R China
[4] Cent S Univ, State Key Lab Powder Met, Changsha 410083, Hunan, Peoples R China
[5] Hunan Normal Univ, Coll Chem & Chem Engn, Changsha 410081, Hunan, Peoples R China
基金
中国国家自然科学基金;
关键词
LiNO3 aqueous electrolyte; Li2SO4 aqueous electrolyte; Conductivity; Viscosity; Supercapacitive performance; ELECTRICAL DOUBLE-LAYER; POROUS CARBON ELECTRODES; GLUCOSE DERIVED CARBON; CARBON/CARBON SUPERCAPACITORS; STABILITY LIMITS; IONIC LIQUIDS; OXYGEN ELECTROREDUCTION; ACTIVATED CARBON; FACILE SYNTHESIS; ENERGY-STORAGE;
D O I
10.1016/j.electacta.2018.04.097
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
In this work, highly soluble LiNO3 was adopted as the neutrally aqueous electrolyte for active carbon (AC)-based electrochemical double-layer capacitors (EDLCs), of which the electrochemical performances were evaluated. Simultaneously, the physicochemical properties such as the ionic conductivity and viscosity of the LiNO3 aqueous solution were investigated. As compared with the most studied Li2SO4 aqueous solution, the LiNO3 aqueous solution displays more favorable physicochemical properties and electrochemical performances as the neutral electrolytes for EDLCs. To be specific, the conductivity of the 5.0M LiNO3 aqueous solution can reach up to 154.8 mS cm(-1) at 25 degrees C, which is nearly two times of the maximum conductivity of 77.6 mS cm(-1) for the 2.0M Li2SO4 aqueous solution under the identical testing conditions. Even at a concentration as high as 9.0M, the absolute viscosity of the LiNO3 aqueous solution is only 2.4, while that of the Li2SO4 aqueous solution achieves 3.0 at the maximum concentration of 2.5 M. Additionally, 5.0M LiNO3 aqueous solution exhibits a wide electrochemical potential stability window from -0.9 to 0.9 V (vs. SCE) at the AC electrode, giving rise to an operating cell voltage of 1.8 V, which is comparable to that of 2.0M Li2SO4 aqueous solution. Further, with the 5.0M LiNO3 aqueous solution as the electrolyte, the as-fabricated EDLC delivers an energy density up to 21.16Wh Kg (-1) at a power density of 100.09Wkg(-1), which is higher than 18.43 Wh Kg(-1) for the EDLC with the 2.0M Li2SO4 aqueous electrolyte at the identical power density. Even though the power density reaches as high as 5970W kg(-1), the energy density of the EDLC with the 5.0M LiNO3 aqueous electrolyte can still remain at 13.1 Wh Kg(-1), substantially higher than 8.71Wh Kg(-1) of the EDLC with the 2.0M Li2SO4 aqueous electrolyte at the same power density. Moreover, the EDLC with the 5.0M LiNO3 aqueous electrolyte also holds good cyclic stability. After 10000 chargeedischarge cycles at a current density of 1 A g(-1) and a cutoff voltage of 1.8 V, the capacity retention of this EDLC retains more than 90%. These results can render an insight to explore safe, eco-friendly, inexpensive and neutrally aqueous electrolytes for supercapacitors. (C) 2018 Elsevier Ltd. All rights reserved.
引用
收藏
页码:121 / 130
页数:10
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