Modulation of Water Reactivity and Construction Hydrophobic Interphase by Ethyl Acetate Co-Solvent for Dendritic Free and Low Temperature Zinc-Metal Batteries

21 Pages Posted: 24 Jan 2024

See all articles by Xinpeng Li

Xinpeng Li

Southwest Petroleum University

Mingshan Wang

Southwest Petroleum University - School of New Energy and Materials

Yuanwei Chu

Southwest Petroleum University

Yang Gao

Southwest Petroleum University

Zhenliang Yang

affiliation not provided to SSRN

Yuanlong Feng

Southwest Petroleum University

Junchen Chen

Southwest Petroleum University - School of New Energy and Materials

Zhiyuan Ma

Southwest Petroleum University

Bingshu Guo

Southwest Petroleum University

Bo Yu

Southwest Petroleum University - School of New Energy and Materials

Yun Huang

Southwest Petroleum University - School of New Energy and Materials

Xing Li

Southwest Petroleum University - School of New Energy and Materials

Abstract

The realization of durable aqueous zinc-metal batteries is hindered by uncontrollable Zn dendrite growth and serious parasitic reactions. Here, a miscible ethyl acetate (EA)/H2O co-solvent electrolyte is constructed by salting-in effect of Zn(OTf)2 to manipulate the solvation structures of Zn2+ and disrupt the original strong H-bond networks built by H2O. It reveals that EA molecules and OTf- jointly forms EA-H2O-OTf- co-dominated solvation sheath structure, weakening the coordination between Zn2+ and water molecules, meanwhile promoting Zn2+ immigration in reconstructed co-solvent H-bond environment. Besides, de-solvation water molecules with higher ionization barrier significantly inhibits H2O reactivity. Further, the introduced EA molecules are prone to preferentially adsorbed in Holmhertz Electrical Double Layers, which forms a hydrophobic interphase to regulate the uniform distribution of Zn2+ fluxes by steric structure. Therefore, it realizes dendrite-free zinc deposition with long plating/stripping stability of over 1300 h at 1 mA cm-2. In particular, the low temperature (600 cycles at -40℃) and ultra-long durable (20,000 cycles with 100% capacity retention) electrochemical performance in Zn||Active Carbon zinc-ion capacitors, as well as long cycling stability (average coulombic efficiency of 99.91% at 1 A g-1 after 1000 cycles) in Zn|| NaV3O8·1.5H2O batteries are also achieved.

Keywords: Aqueous zinc-ion batteries, Electrolyte, Co-solvent, Ethyl acetate

Suggested Citation

Li, Xinpeng and Wang, Mingshan and Chu, Yuanwei and Gao, Yang and Yang, Zhenliang and Feng, Yuanlong and Chen, Junchen and Ma, Zhiyuan and Guo, Bingshu and Yu, Bo and Huang, Yun and Li, Xing, Modulation of Water Reactivity and Construction Hydrophobic Interphase by Ethyl Acetate Co-Solvent for Dendritic Free and Low Temperature Zinc-Metal Batteries. Available at SSRN: https://ssrn.com/abstract=4705564 or http://dx.doi.org/10.2139/ssrn.4705564

Xinpeng Li

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Mingshan Wang (Contact Author)

Southwest Petroleum University - School of New Energy and Materials ( email )

Chengdu, 610500
China

Yuanwei Chu

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Yang Gao

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Zhenliang Yang

affiliation not provided to SSRN ( email )

No Address Available

Yuanlong Feng

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Junchen Chen

Southwest Petroleum University - School of New Energy and Materials ( email )

Chengdu, 610500
China

Zhiyuan Ma

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Bingshu Guo

Southwest Petroleum University ( email )

8# Xin du Avennue
Chengdu
China

Bo Yu

Southwest Petroleum University - School of New Energy and Materials ( email )

Chengdu, 610500
China

Yun Huang

Southwest Petroleum University - School of New Energy and Materials ( email )

Chengdu, 610500
China

Xing Li

Southwest Petroleum University - School of New Energy and Materials ( email )

Chengdu, 610500
China

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