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Three-dimensional Zn-based alloys for dendrite-free aqueous Zn battery in dual-cation electrolytes

  • Huajun Tian (Co-first Author)
  • , Guangxia Feng (Co-first Author)
  • , Qi Wang (Co-first Author)
  • , Zhao Li (Co-first Author)
  • , Wei Zhang
  • , Marcos Lucero
  • , Zhenxing Feng
  • , Zi-Le Wang
  • , Yuning Zhang
  • , Cheng Zhen
  • , Meng Gu*
  • , Xiaonan Shan*
  • , Yang Yang*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

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Abstract

Aqueous zinc-ion batteries, in terms of integration with high safety, environmental benignity, and low cost, have attracted much attention for powering electronic devices and storage systems. However, the interface instability issues at the Zn anode caused by detrimental side reactions such as dendrite growth, hydrogen evolution, and metal corrosion at the solid (anode)/liquid (electrolyte) interface impede their practical applications in the fields requiring long-term performance persistence. Despite the rapid progress in suppressing the side reactions at the materials interface, the mechanism of ion storage and dendrite formation in practical aqueous zinc-ion batteries with dual-cation aqueous electrolytes is still unclear. Herein, we design an interface material consisting of forest-like three-dimensional zinc-copper alloy with engineered surfaces to explore the Zn plating/stripping mode in dual-cation electrolytes. The three-dimensional nanostructured surface of zinc-copper alloy is demonstrated to be in favor of effectively regulating the reaction kinetics of Zn plating/stripping processes. The developed interface materials suppress the dendrite growth on the anode surface towards high-performance persistent aqueous zinc-ion batteries in the aqueous electrolytes containing single and dual cations. This work remarkably enhances the fundamental understanding of dual-cation intercalation chemistry in aqueous electrochemical systems and provides a guide for exploring high-performance aqueous zinc-ion batteries and beyond. © 2022, The Author(s).
Original languageEnglish
Article number7922
Number of pages11
JournalNature Communications
Volume13
Online published23 Dec 2022
DOIs
Publication statusPublished - 2022
Externally publishedYes

Funding

This work was supported by National Science Foundation under Grant No. CMMI-1851674, CBET-1949840, and ACS PRF (65481-ND10). H.T. thanks for the Interdisciplinary Innovation Program of North China Electric Power University (No. XM2212315). Z.F. thanks the support from U.S. National Science Foundation for Award Number CBET-2016192 and DMR-1832803. The XAS measurements done at 12-BM used resources of the Advanced Photon Source at ANL, which is U.S. DOE Office of Science User Facilities under contract no. DE- AC02-06CH11357. M.G. wants to acknowledge the Shenzhen fundamental research funding (JCYJ20210324115809026, 20200925154115001, JCYJ20200109141216566), Shenzhen Science and Technology Innovation Committee (RCBS20200714114919174). X.S. thanks the supports from the U.S. Department of Energy for award number DOE DE-FE-0032092, University of Houston’s University of Houston Center for Carbon Management in Energy program, UL Research Institutes, and Beyond Bits Technology, Inc. The XPS test was supported by the NSF MRI XPS: ECCS: 1726636, hosted in MCF-AMPAC facility, MSE, CECS, UCF.

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Publisher's Copyright Statement

  • This full text is made available under CC-BY 4.0. https://creativecommons.org/licenses/by/4.0/

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