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使用低成本抗溶剂提高水系电解液中锌电极的可逆性。

Boosting Zinc Electrode Reversibility in Aqueous Electrolytes by Using Low-Cost Antisolvents.

机构信息

School of Chemical Engineering & Advanced Materials, The University of Adelaide, Adelaide, SA, 5005, Australia.

Institute for Superconducting and Electronic Materials, Australian Institute for Innovative Materials, University of Wollongong, Wollongong, NSW, 2522, Australia.

出版信息

Angew Chem Int Ed Engl. 2021 Mar 22;60(13):7366-7375. doi: 10.1002/anie.202016531. Epub 2021 Feb 24.

Abstract

Antisolvent addition has been widely studied in crystallization in the pharmaceutical industries by breaking the solvation balance of the original solution. Here we report a similar antisolvent strategy to boost Zn reversibility via regulation of the electrolyte on a molecular level. By adding for example methanol into ZnSO electrolyte, the free water and coordinated water in Zn solvation sheath gradually interact with the antisolvent, which minimizes water activity and weakens Zn solvation. Concomitantly, dendrite-free Zn deposition occurs via change in the deposition orientation, as evidenced by in situ optical microscopy. Zn reversibility is significantly boosted in antisolvent electrolyte of 50 % methanol by volume (Anti-M-50 %) even under harsh environments of -20 °C and 60 °C. Additionally, the suppressed side reactions and dendrite-free Zn plating/stripping in Anti-M-50 % electrolyte significantly enhance performance of Zn/polyaniline coin and pouch cells. We demonstrate this low-cost strategy can be readily generalized to other solvents, indicating its practical universality. Results will be of immediate interest and benefit to a range of researchers in electrochemistry and energy storage.

摘要

抗溶剂添加在制药行业的结晶中得到了广泛的研究,通过打破原始溶液的溶解平衡来实现。在这里,我们报告了一种类似的抗溶剂策略,通过在分子水平上调节电解质来提高锌的可逆性。例如,向 ZnSO4 电解质中添加甲醇,Zn 溶剂化鞘中的游离水和配位水逐渐与抗溶剂相互作用,从而降低水活度并削弱 Zn 的溶剂化作用。同时,通过沉积方向的改变,实现了无枝晶的 Zn 沉积,这一点可以通过原位光学显微镜得到证实。在体积比为 50%甲醇的抗溶剂电解质(Anti-M-50%)中,即使在-20°C 和 60°C 的恶劣环境下,锌的可逆性也得到了显著提高。此外,抑制的副反应和无枝晶的 Zn 电镀/剥离在 Anti-M-50%电解质中显著提高了 Zn/聚苯胺纽扣和袋式电池的性能。我们证明了这种低成本策略可以很容易地推广到其他溶剂,表明其具有实际的通用性。这一结果将立即引起电化学和储能领域的广泛关注和受益。

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