Dual-Engineering of Ammonium Vanadate for Enhanced Aqueous and Quasi-Solid-State Zinc Ion Batteries

33 Pages Posted: 28 Apr 2022

See all articles by Yu Zheng

Yu Zheng

Zhejiang Agriculture and Forestry University

Chengxiang Tian

affiliation not provided to SSRN

Yitian Wu

affiliation not provided to SSRN

Lanze Li

affiliation not provided to SSRN

Yingjie Tao

Zhejiang Agriculture and Forestry University

Lulu Liang

affiliation not provided to SSRN

Guanghe Yu

affiliation not provided to SSRN

Sai Wu

Zhejiang Agriculture and Forestry University

Fan Wang

Zhejiang Agriculture and Forestry University

Yajun Pang

Zhejiang Agriculture and Forestry University

Zhenghui Pan

Tongji University

Zhehong Shen

Zhejiang Agriculture and Forestry University

Hao Chen

affiliation not provided to SSRN

Abstract

Ammonium vanadate holds promise for the high-performance cathode in aqueous zinc ion batteries (ZIBs) due to its stable layered structure and superior theoretical capacity. However, excessive ammonium cations occupying the interlayer and too strong electrostatic interaction between Zn 2+ and defect-free V-O bonds largely hinder the capacity and rate performance of ammonium vanadate in ZIBs. Here, in this work, a dual-engineering method that integrates the removal of partial ammonium cations and the increase of oxygen vacancies has been proposed to boost the performance of NH 4 V 4 O 10 (NVO). Experimental evidence and theoretical calculations demonstrate that this method can ensure an enlarged room for the (de)intercalation of more Zn 2+ ions and weaken the strong electrostatic interaction between the V-O layer and Zn 2+ to reduce the energy barrier of the Zn 2+ diffusion process. As a consequence, the specific capacity of the as-obtained NVO with the above dual characteristic (NVO-300) was enhanced from 304 mAh g −1 to 355 mAh g −1 , relative to the NVO without dual characteristic. And the rate capability of NVO-300 has a more than 300% increase relative to NVO. Furthermore, benefiting from the superior performance and self-supporting feature of this NVO-300, a quasi-solid-state ZIB based on NVO-300 displays a satisfactory specific capacity of 307 mAh g −1 at 0.5 A g −1 and a high energy density of 214 Wh kg −1 at 345 W kg −1 , demonstrative of its great usage potential as a practical portable energy storage device.

Keywords: Ammonium vanadate, zinc ion batteries, ammonium cation, oxygen vacancy, quasi-solid-state

Suggested Citation

Zheng, Yu and Tian, Chengxiang and Wu, Yitian and Li, Lanze and Tao, Yingjie and Liang, Lulu and Yu, Guanghe and Wu, Sai and Wang, Fan and Pang, Yajun and Pan, Zhenghui and Shen, Zhehong and Chen, Hao, Dual-Engineering of Ammonium Vanadate for Enhanced Aqueous and Quasi-Solid-State Zinc Ion Batteries. Available at SSRN: https://ssrn.com/abstract=4093944 or http://dx.doi.org/10.2139/ssrn.4093944

Yu Zheng

Zhejiang Agriculture and Forestry University ( email )

Chengxiang Tian

affiliation not provided to SSRN ( email )

No Address Available

Yitian Wu

affiliation not provided to SSRN ( email )

No Address Available

Lanze Li

affiliation not provided to SSRN ( email )

No Address Available

Yingjie Tao

Zhejiang Agriculture and Forestry University ( email )

Lulu Liang

affiliation not provided to SSRN ( email )

No Address Available

Guanghe Yu

affiliation not provided to SSRN ( email )

No Address Available

Sai Wu

Zhejiang Agriculture and Forestry University ( email )

Fan Wang

Zhejiang Agriculture and Forestry University ( email )

Yajun Pang

Zhejiang Agriculture and Forestry University ( email )

Zhenghui Pan (Contact Author)

Tongji University ( email )

Zhehong Shen

Zhejiang Agriculture and Forestry University ( email )

Hao Chen

affiliation not provided to SSRN ( email )

No Address Available

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