Wood-inspired anisotropic hydrogel electrolyte with large modulus and low tortuosity realizing durable dendrite-free zinc-ion batteries.

IF 9.1 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Proceedings of the National Academy of Sciences of the United States of America Pub Date : 2024-05-21 Epub Date: 2024-05-15 DOI:10.1073/pnas.2322944121
Jizhang Chen, Minfeng Chen, Hongli Chen, Ming Yang, Xiang Han, Dingtao Ma, Peixin Zhang, Ching-Ping Wong
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Abstract

While aqueous zinc-ion batteries exhibit great potential, their performance is impeded by zinc dendrites. Existing literature has proposed the use of hydrogel electrolytes to ameliorate this issue. Nevertheless, the mechanical attributes of hydrogel electrolytes, particularly their modulus, are suboptimal, primarily ascribed to the substantial water content. This drawback would severely restrict the dendrite-inhibiting efficacy, especially under large mass loadings of active materials. Inspired by the structural characteristics of wood, this study endeavors to fabricate the anisotropic carboxymethyl cellulose hydrogel electrolyte through directional freezing, salting-out effect, and compression reinforcement, aiming to maximize the modulus along the direction perpendicular to the electrode surface. The heightened modulus concurrently serves to suppress the vertical deposition of the intermediate product at the cathode. Meanwhile, the oriented channels with low tortuosity enabled by the anisotropic structure are beneficial to the ionic transport between the anode and cathode. Comparative analysis with an isotropic hydrogel sample reveals a marked enhancement in both modulus and ionic conductivity in the anisotropic hydrogel. This enhancement contributes to significantly improved zinc stripping/plating reversibility and mitigated electrochemical polarization. Additionally, a durable quasi-solid-state Zn//MnO2 battery with noteworthy volumetric energy density is realized. This study offers unique perspectives for designing hydrogel electrolytes and augmenting battery performance.

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木质启发的各向异性水凝胶电解质具有高模量和低曲折度,可实现耐用的无树枝状晶粒锌离子电池。
虽然锌离子水电池具有巨大的潜力,但其性能却受到锌枝晶的阻碍。现有文献建议使用水凝胶电解质来改善这一问题。然而,水凝胶电解质的机械属性,尤其是模量,并不理想,这主要是由于其含有大量水分。这一缺点将严重限制树枝状突起抑制效果,尤其是在活性材料大量负载的情况下。受木材结构特性的启发,本研究试图通过定向冷冻、盐析效应和压缩加固来制造各向异性的羧甲基纤维素水凝胶电解质,目的是沿垂直于电极表面的方向最大限度地提高模量。模量的提高可同时抑制中间产物在阴极的垂直沉积。同时,各向异性结构带来的低迂回度定向通道有利于阳极和阴极之间的离子传输。与各向同性水凝胶样品的对比分析表明,各向异性水凝胶的模量和离子传导性都有显著提高。这种增强显著提高了锌剥离/电镀的可逆性,并减轻了电化学极化。此外,还实现了具有显著体积能量密度的耐用准固态锌//二氧化锰电池。这项研究为设计水凝胶电解质和提高电池性能提供了独特的视角。
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来源期刊
CiteScore
19.00
自引率
0.90%
发文量
3575
审稿时长
2.5 months
期刊介绍: The Proceedings of the National Academy of Sciences (PNAS), a peer-reviewed journal of the National Academy of Sciences (NAS), serves as an authoritative source for high-impact, original research across the biological, physical, and social sciences. With a global scope, the journal welcomes submissions from researchers worldwide, making it an inclusive platform for advancing scientific knowledge.
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