Dual-function electrolyte additive enabling simultaneous electrode interface and coordination environment regulation for zinc-ion batteries

被引:108
作者
Chen, Yimei [1 ]
Gong, Facheng [2 ]
Deng, Wenjing [1 ]
Zhang, Hao [1 ]
Wang, Xiaolei [1 ]
机构
[1] Univ Alberta, Dept Chem & Mat Engn, 9211-116 St NW, Edmonton, AB T6G 1H9, Canada
[2] Univ Alberta, Sch Min & Petr Engn, 9211-116 St NW, Edmonton, AB T6G 1H9, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Aqueous zinc -ion batteries; Dual -function electrolyte additives; DFT calculation; MD simulation; finite element simulation; PHYTIC ACID; ELECTROCHEMISTRY;
D O I
10.1016/j.ensm.2023.03.010
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Despite advantages of low cost, high safety, and high capacity, aqueous zinc-ion batteries are facing challenges of zinc dendrite and side reactions. Herein, a low-cost and biocompatible electrolyte additive with dual-function is designed to simultaneously optimize the electrode interface and Zn2+ coordination environment. Due to the high hydrogen-bond donors and acceptors' properties, phytic acid (PA) is selected for electrolyte optimization. Both simulation and experimental results show that the PA additives can absorb on the electrode surface, covering the active sites for proton attack and guiding the uniform deposition of zinc. The absorbed PA is also conducive to the de-hydration of Zn [(H2O)6]2+ through hydrogen bonding interactions between PA and water. Additionally, PA has a strong affinity to Zn2+ and can compete with water molecules in the Zn [(H2O)6]2+, reducing the water molecules in the first hydration layer of Zn2+. The finite element simulation further illustrates a more uniform distribution of current density and zinc deposition with PA adsorption. Specifically, high Coulombic efficiency of 99.4% and long cycling stability of more than 1200 cycles are obtained with the PA additive at 1 mA cm-2 and 1 mAh cm-2 with the zinc foil of 100 mu m. When coupling with the I2/ active carbon cathode, the full cell with the PA additive delivers a high capacity of 110 mAh g-1 at 1 A g-1, and can stably cycle for more than 2500 cycles. This work provides a direction on seeking dual-function electrolyte additives with high hydrogen bonding do-nors/acceptors to inhibit Zn dendrite and parasitic reactions.
引用
收藏
页码:20 / 29
页数:10
相关论文
共 59 条
[1]  
An Y., STABLE AQUEOUS ANODE
[2]  
[Anonymous], 2018, EFFECTS ELECT ADDITI, DOI [10.1149/2.0251802jes, DOI 10.1149/2.0251802JES]
[3]  
Beiglbock Ehlers W.J., LECT NOTES PHYS, V860
[4]   Recent Progress in Layered Manganese and Vanadium Oxide Cathodes for Zn-Ion Batteries [J].
Bensalah, Nasr ;
De Luna, Yannis .
ENERGY TECHNOLOGY, 2021, 9 (05)
[5]   Stable and High-Energy-Density Zn-Ion Rechargeable Batteries Based on a MoS2-Coated Zn Anode [J].
Bhoyate, Sanket ;
Mhin, Sungwook ;
Jeon, Jae-eun ;
Park, KyoungRyeol ;
Kim, Junyoung ;
Choi, Wonbong .
ACS APPLIED MATERIALS & INTERFACES, 2020, 12 (24) :27249-27257
[6]   Stabilizing zinc anode via a chelation and desolvation electrolyte additive [J].
Cao, Jin ;
Zhang, Dongdong ;
Chanajaree, Rungroj ;
Yue, Yilei ;
Zeng, Zhiyuan ;
Zhang, Xinyu ;
Qin, Jiaqian .
ADVANCED POWDER MATERIALS, 2022, 1 (01)
[7]   Strategies of regulating Zn2+ solvation structures for dendrite-free and side reaction-suppressed zinc-ion batteries [J].
Cao, Jin ;
Zhang, Dongdong ;
Zhang, Xinyu ;
Zeng, Zhiyuan ;
Qin, Jiaqian ;
Huang, Yunhui .
ENERGY & ENVIRONMENTAL SCIENCE, 2022, 15 (02) :499-528
[8]   High-donor electrolyte additive enabling stable aqueous zinc-ion batteries [J].
Deng, Wenjing ;
Xu, Zhixiao ;
Wang, Xiaolei .
ENERGY STORAGE MATERIALS, 2022, 52 :52-60
[9]   V-MOF derived porous V2O5 nanoplates for high performance aqueous zincion battery [J].
Ding, Youcai ;
Peng, Yuqi ;
Chen, Wenyong ;
Niu, Yunjuan ;
Wu, Shougang ;
Zhang, Xianxi ;
Hu, Linhua .
APPLIED SURFACE SCIENCE, 2019, 493 :368-374
[10]   Non-concentrated aqueous electrolytes with organic solvent additives for stable zinc batteries†‡ [J].
Dong, Yang ;
Miao, Licheng ;
Ma, Guoqiang ;
Di, Shengli ;
Wang, Yuanyuan ;
Wang, Liubin ;
Xu, Jianzhong ;
Zhang, Ning .
CHEMICAL SCIENCE, 2021, 12 (16) :5843-5852