Quick News Bit

New membrane improves reversibility of zinc-air batteries

0
New membrane improves reversibility of zinc-air batteries
Schematic diagram of the hybrid ZAB with a proton-shuttle-shielding, hydrophobic-ion-conducting membrane, and the corresponding chemical reactions. Credit: Zhang Xinbo

The long-standing challenges to the practical implementation of rechargeable zinc-air batteries (ZABs) are the electrochemical irreversibility of the Zn anode and degradation of the air cathodes in alkaline electrolyte, which eventually result in poor cycle life and low cell voltage.

To improve the reversibility of ZABs, exhaustive efforts have been made to exploit highly survivable catalysts for the air cathode while weakening the corrosion of the Zn anode through electrode design or electrolyte additives. These strategies can alleviate but not completely overcome the core challenges associated with the strongly alkaline electrolyte.

Taking a different approach, a research team led by Zhang Xinbo from the Changchun Institute of Applied Chemistry (CIAC) of the Chinese Academy of Sciences recently developed a high-voltage, stable hybrid ZAB by using a neutral Zn anode, an acidic cathode, and a dual-hydrophobic-induced, proton-shuttle-shielding membrane to separate the two electrodes.

Their findings were published in Joule.

The researchers found that highly reversible Zn plating/stripping can be achieved in neutral electrolytes, while acidic electrolytes are essential for making the air cathode immune to CO2 poisoning issues. Therefore, they proposed a hybrid ZAB by decoupling the functional environments of the acidic air cathode and neutral Zn anode.

However, the essential prerequisite for long-time operation of a hybrid ZAB is that the two electrodes work independently in their respective environments, thus completely and permanently preventing proton crossover from catholyte to anolyte. Based on this prerequisite, the researchers proposed a proton-shuttle-shielding, hydrophobic-ion-conducting membrane to make this hybrid system possible.

Notably, this hybrid cell permits the optimized redox chemistry of both the Zn anode and the air cathode. This enables stable Zn stripping/plating in the neutral electrolyte and the high voltage of the oxygen redox reaction in the acidic electrolyte. As a result, the hybrid ZAB exhibits a high working voltage of 1.5 V and long cycle life of 2000 h.

Zhang and his team proposed two types of hybrid cell prototypes that would employ the proton-shuttle-shielding, hydrophobic-ion-conducting strategy. Both the hybrid Zn-Mn battery and hybrid Zn-Br battery are expected to exhibit potentially high voltage and a long cycle life, thus showing the feasibility of using such hybrid cells to create high-energy-density aqueous batteries.

According to Zhang, “the rise of a hybrid ZAB might also stimulate the development of many burgeoning areas, such as acidic ORR/OER in proton-exchange membrane fuel cells and electrolyzers.”


Novel ion exchange membrane improves performance of vanadium redox flow batteries


More information:
Xin-bo Zhang, A high-voltage and stable zinc-air battery enabled by dual-hydrophobic-induced proton shuttle shielding, Joule (2022). DOI: 10.1016/j.joule.2022.05.019. www.cell.com/joule/fulltext/S2542-4351(22)00246-X

Journal information:
Joule


Provided by
Chinese Academy of Sciences


Citation:
New membrane improves reversibility of zinc-air batteries (2022, June 20)
retrieved 20 June 2022
from https://techxplore.com/news/2022-06-membrane-reversibility-zinc-air-batteries.html

This document is subject to copyright. Apart from any fair dealing for the purpose of private study or research, no
part may be reproduced without the written permission. The content is provided for information purposes only.

For all the latest Technology News Click Here 

 For the latest news and updates, follow us on Google News

Read original article here

Denial of responsibility! NewsBit.us is an automatic aggregator around the global media. All the content are available free on Internet. We have just arranged it in one platform for educational purpose only. In each content, the hyperlink to the primary source is specified. All trademarks belong to their rightful owners, all materials to their authors. If you are the owner of the content and do not want us to publish your materials on our website, please contact us by email – [email protected]. The content will be deleted within 24 hours.

Leave a comment