Achieving stable Zn metal anode through novel interface design with multifunctional electrolyte additive

被引:36
作者
Liang, Zhenye [1 ]
Li, Chao [2 ]
Zuo, Daxian [1 ]
Zeng, Lin [1 ,2 ]
Ling, Tong [3 ]
Han, Jiajia [4 ]
Wan, Jiayu [1 ,2 ,5 ]
机构
[1] Southern Univ Sci & Technol, Dept Mech & Energy Engn, Shenzhen 518055, Peoples R China
[2] Southern Univ Sci & Technol, SUSTech Energy Inst Carbon Neutral, Shenzhen 518055, Peoples R China
[3] Nanyang Technol Univ, Sch Chem Chem Engn & Biotechnol, Singapore 637457, Singapore
[4] Xiamen Univ, Coll Mat, Dept Mat Sci & Engn, Xiamen 361005, Peoples R China
[5] Shanghai Jiao Tong Univ, Global Inst Future Technol, Shanghai 200240, Peoples R China
基金
中国国家自然科学基金;
关键词
Electrolyte additive; Nitrilotriacetic acid; Zn anode; aqueous Zn ion battery; Density functional theory; LITHIUM-ION BATTERY; DENDRITE FORMATION; ZINC ANODES; NTA; STRATEGIES; BEHAVIOR; SAFETY;
D O I
10.1016/j.ensm.2023.102980
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
Rechargeable aqueous Zn batteries (RAZBs) are promising for energy storage systems as they are intrinsically safe, cost-effective and environmentally friendly. However, undesired dendrites and corrosion side reactions worsen at cycling, which limit the reversibility and scalable application of RAZBs. This issue arises from the undesired side reactions from corrosion of Zn in regular aqueous electrolytes, which lead to formation of side products, nonuniform Zn nucleation, finally dendrite formation. Here, we report nitrilotriacetic acid (NTA) as a highly efficient functional additive that can preferentially adsorbs on Zn surface, avoiding the direct contact between Zn and water molecules and significantly alleviating corrosion. This clean, protected Zn surface can thus promote uniform Zn plating/stripping. Furthermore, the adsorbed NTA molecules can attract water molecules to facilitate the desolvation of Zn2+ and promote Zn2+ fast transport, as verified both experimentally and computationally. Notably, we found that only a trace amount of NTA (0.15 wt%) is sufficient to form a stable electrode/electrolyte interface, reducing the corrosion rate from 3.63 mA cm-2 to merely 0.22 mA cm- 2. This stable interface enabled highly reversible Zn stripping/plating at 5 mA cm-2 and 0.5 mAh cm-2 in symmetric cells, lasting about 2100 h. An outstanding average Coulombic efficiency of 99.40 % in 800 cycles was also achieved. This study provides new insights into realizing highly reversible Zn anodes for RAZBs via the addition of highly efficient, multifunctional electrolyte additive, whose design principle may be generalized to many rechargeable battery systems.
引用
收藏
页数:10
相关论文
共 50 条
[21]   Advanced design strategy in the anode-electrolyte interface for highly reversible aqueous Zn ion batteries [J].
Hu, Xiyun ;
Fan, Lanlan ;
Xiong, Shixian ;
Gu, Feng ;
Cao, Lei ;
Wang, Shufen .
JOURNAL OF ENERGY STORAGE, 2024, 97
[22]   Electrolyte Engineering Strategy with Catecholate Type Additive Enabled Ultradurable Zn Anode [J].
Liang, Wenyu ;
Li, Dongyang ;
Zhong, Rui ;
Tao, Sirong ;
Zhu, Yueming ;
Tan, Wendong ;
Xu, Rui ;
Yuan, Yifei ;
Zhitomirsky, Igor ;
Lu, Jun .
ADVANCED FUNCTIONAL MATERIALS, 2025,
[23]   Reforming Multifunctional Solid Electrolyte Interphase for High-Performance Zn Anode Through a Nature-Inspired Strategy [J].
Ma, Qing ;
Song, Weihao ;
Zhang, Xiaoya ;
Yang, Na ;
Wu, Bing ;
Zheng, Chengjin ;
Fujishige, Masatsugu ;
Takeuchi, Kenji ;
Endo, Morinobu ;
Niu, Jin ;
Wang, Feng .
ADVANCED FUNCTIONAL MATERIALS, 2025,
[24]   Enabling High Reversibility of Zn anode via Interfacial Engineering Induced by Amino acid Electrolyte Additive [J].
Naveed, Ahmad ;
Li, Teng ;
Ali, Amjad ;
Ahmad, Farooq ;
Qureshi, Waqar Ahmad ;
Su, Mingru ;
Li, Xiaowei ;
Zhou, Yu ;
Wu, Jian-Chun ;
Liu, Yunjian .
SMALL, 2024, 20 (40)
[25]   Polar small molecular electrolyte additive for stabilizing Zn anode [J].
Su, Kailimai ;
Zhang, Xingyun ;
Zhang, Xiaqing ;
Wang, Chengshuai ;
Pu, Yunxun ;
Wang, Yan ;
Wan, Shanhong ;
Lang, Junwei .
CHEMICAL ENGINEERING JOURNAL, 2023, 474
[26]   Constructing a conductive solid electrolyte interface by adding lithium nitrate into carbonate electrolyte for stable lithium metal anode [J].
Fei, Jiafeng ;
Liu, Honghao ;
Wang, Rongjie ;
Guan, Mengjia ;
Li, Yongsheng .
SOLID STATE IONICS, 2024, 412
[27]   Erythritol as a Saccharide Multifunctional Electrolyte Additive for Highly Reversible Zinc Anode [J].
Li, Linjie ;
Guo, Zongwei ;
Li, Shiteng ;
Cao, Piting ;
Du, Weidong ;
Feng, Deshi ;
Wei, Wenhui ;
Xu, Fengzhao ;
Ye, Chuangen ;
Yang, Mingzhi ;
Zhang, Jing ;
Zhang, Xingshuang ;
Li, Yong .
NANOMATERIALS, 2024, 14 (07)
[28]   In Situ Formed Robust Solid Electrolyte Interphase with Organic-Inorganic Hybrid Layer for Stable Zn Metal Anode [J].
Lin, Congjian ;
Li, Tian Chen ;
Wang, Pinji ;
Xu, Yongtai ;
Li, Dong-Sheng ;
Sliva, Arlindo ;
Yang, Hui Ying .
SMALL METHODS, 2024,
[29]   Achieving highly stable lithium-ion/metal hybrid batteries enabled by a functional electrolyte additive [J].
Qiu, Yu-Ping ;
Shi, Yu-Peng ;
Liu, Mao-Cheng ;
Yang, Juan ;
Ma, Peng-Jun ;
Zhang, Xu ;
Yang, Bing-Jun ;
Xu, Jing ;
Liu, Bao .
Electrochimica Acta, 2025, 527
[30]   Tailoring the Solvation Structure through Water Soluble Tartaric Acid Additive for Stable Zn Anode [J].
Wang, Longqi ;
Wang, Miao ;
Liu, Yiran ;
Han, Mengdie ;
Xuan, Qianyu ;
Ma, Junru ;
Li, Jiazheng ;
Zhao, Shiyan ;
Fan, Yuqian ;
Guo, Wenfeng ;
Zhao, Yufeng .
ADVANCED SUSTAINABLE SYSTEMS, 2025,