Non‐Expendable Regulator Enables Durable and Deep Cycling Aqueous Zinc Batteries

Author:

Chen Yining1,Zhou Shuang1,Li Jianwen1,Kang Juntong1,Lin Shangyong2,Han Chao1,Duan Haimin3,liang Shuquan1,Pan Anqiang134ORCID

Affiliation:

1. School of Materials Science and Engineering, Key Laboratory of Electronic Packaging and Advanced Functional Materials of Hunan Province Central South University Changsha Hunan 410083 China

2. School of Minerals Processing and Bioengineering Central South University Changsha Hunan 410083 China

3. School of Physics Science and Technology Xinjiang Key Laboratory of Solid State Physics and Devices Xinjiang University Urumqi Xinjiang 830046 China

4. Xinjiang Engineering Research Center of Environmental and Functional Materials, School of Materials Science and Engineering Xinjiang University Urumqi 830046 China

Abstract

AbstractUnstable electrode/electrolyte interface with irreversible Zn deposition and hydrogen reactions have severely damage the cycle life of aqueous zinc‐metal batteries (ZMBs), which is closely related to interfacial environment and deposition behavior of Zn2+. In this work, a series of rare earth chlorides (RCl3) are proposed as non‐expendable regulators to address the above problems. Specifically, rare earth cations (R3+) with high adsorption energy can simultaneously isolate the adsorbed polar H2O molecule layer at the anode interface and regulate uniform Zn deposition behavior by electrostatic shielding. Meanwhile, Cl binds H2O molecules via the weak hydrogen bonds, thus further inhibiting water‐related side reactions. Consequently, the optimized Zn||Zn symmetric cell can stably cycle for over 8000 cycles at 5 mA cm−2. Surprisingly, the Zn anode with 68.3% zinc utilization also can be operated over 130 h. Even under harsh condition of low N/P ratio of 2.6:1 and high mass‐loading cathode of 12.57 mg cm−2, the NH4V4O10||Zn pouch cell preserves nearly all its capacity after 300 cycles. Further, a low N/P ratio pouch cell with a more respectable capacity of 37.3 mAh preserves deep cycling for 180 cycles. This study sheds light on non‐expendable additives to develop highly durable and deep cycling ZMBs.

Funder

China Postdoctoral Science Foundation

Key Research and Development Program of Hunan Province of China

Publisher

Wiley

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