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引用次数: 0
摘要
可充电锌离子电池因其低成本和不易燃的水性电解质而被视为理想的储能系统。然而,锌阳极的枝晶生长、氢进化反应和自腐蚀带来了严重的安全隐患,包括短路和电极膨胀。因此,为了提高锌阳极的稳定性和使用寿命,我们提出了一种具有三维多孔结构和体相渗透亲锌界面的改进型宿主设计策略。多孔锌基底是通过通用盐酸蚀刻法构建的,而均匀、紧密的锡穿透亲锌界面则是通过有效的电子束蒸发(EBE)形成的。多孔基底能使锌离子通量均匀,锡涂层能有效改善锌离子沉积行为,从而抑制枝晶生长和副反应的风险。因此,带锡界面的三维锌基底(3D Zn@Sn)在对称电池中表现出长达 4500 小时的低极化(1 mA cm-2,1 mAh cm-2)电静循环性能。使用 KVOH@Ti 组装的全电池在 500 次电静电循环(10 A g-1)后仍能保持 148.6 mAh g-1 的高比容量。这项研究提出了一种改进的电极设计,以实现锌离子电池的高性能。
Sn Penetrated Zincophilic Interface Design in Porous Zn Substrate for High Performance Zn-Ion Battery.
Rechargeable zinc-ion batteries are considered an ideal energy storage system due to their low cost and nonflammable aqueous electrolyte. However, dendrite growth, hydrogen evolution reaction, and self-corrosion of zinc anode brought about serious safety risks including short circuits and electrode expansion. Therefore, a modified host-design strategy with a 3D porous structure and bulk-phase penetrated zincophilic interface is proposed to boost the stability and lifetime of the Zn anode. The porous Zn substrate is constructed by universal HCl etching and the uniform and tight Sn-penetrated zincophilic interface is formed by effective electron beam evaporation (EBE). The porous substrate can uniform zinc ion flux and the Sn coating could effectively improve zinc ion deposition behavior, thus inhibiting the risk of dendrites growth and side reaction. As a result, the 3D Zn substrate with Sn interface (3D Zn@Sn) exhibits prolonged galvanostatic cycling performance up to 4500 h with a low polarization of ≈25 mV (1 mA cm-2, 1 mAh cm-2) in the symmetric cell. The full cell assembled with KVOH@Ti could maintain a high specific capacity of 148.6 mAh g-1 after 500 galvanostatic cycles (10 A g-1). This work proposed an improved electrode design to realize the high performance of zinc ion batteries.
Small MethodsMaterials Science-General Materials Science
CiteScore
17.40
自引率
1.60%
发文量
347
期刊介绍:
Small Methods is a multidisciplinary journal that publishes groundbreaking research on methods relevant to nano- and microscale research. It welcomes contributions from the fields of materials science, biomedical science, chemistry, and physics, showcasing the latest advancements in experimental techniques.
With a notable 2022 Impact Factor of 12.4 (Journal Citation Reports, Clarivate Analytics, 2023), Small Methods is recognized for its significant impact on the scientific community.
The online ISSN for Small Methods is 2366-9608.