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通过在多孔隧道框架阴极中的杂原子掺杂来提升水系镁离子电池的镁离子存储行为。

Boosting Magnesium Ion Storage Behavior via Heteroelement Doping in a Porous Tunnel Framework Cathode for Aqueous Mg-Ion Batteries.

机构信息

College of Materials Science and Chemical Engineering, Harbin Engineering University, Harbin, 150001, China.

Festo Production Ltd., 1222, North Chunxuan road, Gaoxin district, Jinan, 250101, China.

出版信息

Chem Asian J. 2023 Jun 15;18(12):e202300208. doi: 10.1002/asia.202300208. Epub 2023 May 10.

DOI:10.1002/asia.202300208
PMID:37162452
Abstract

To relieve the overwhelming pressure on fossil energy, aqueous magnesium ion batteries attracted tremendous attention owing to their low cost and high safety. However, the cathode materials are apt to occur lattice distortion because of the electrostatic interaction between magnesium ions and crystal. The 2×2 manganese octahedral molecular sieve with potassium ions and water located in the tunnels (K-OMS-2), utilized as a cathode material for chargeable magnesium ions batteries, is exposed to irreversible Mg intercalation/deintercalation due to lattice distortion, which heavily damages the electrochemical properties and declines the capacity. Herein, we carry out an ion doping strategy to overcome the above issues, leading to an enhanced Mg Mg storage behavior. The Nb or V cation is successfully doped into K-OMS-2 by a facile reflux method under room temperature. The specific surface area is enlarged by the addition of cations, which promise a large electrode-electrolyte contact area. The Nb and V doped K-OMS-2 present a capacity of 252.6 and 265.9 mAh/g at 20 mA/g, respectively. This work demonstrates an ion doping approach toward exploiting the stable and high-capacity Mg-ion battery cathode and provides potential cathode materials for a large-scale aqueous Mg-ion-based energy storage system.

摘要

为缓解化石能源的巨大压力,水系镁离子电池因成本低、安全性高而受到极大关注。然而,由于镁离子与晶体之间的静电相互作用,阴极材料容易发生晶格变形。具有钾离子和位于隧道中的水分子的 2×2 锰八面体分子筛(K-OMS-2)用作可充电镁离子电池的阴极材料,由于晶格变形而暴露于不可逆的 Mg 嵌入/脱嵌中,这严重破坏了电化学性能并降低了容量。在此,我们采用离子掺杂策略来克服上述问题,从而提高了 Mg 的存储性能。通过简单的回流法,在室温下成功地将 Nb 或 V 阳离子掺杂到 K-OMS-2 中。阳离子的加入扩大了比表面积,保证了较大的电极-电解质接触面积。Nb 和 V 掺杂的 K-OMS-2 在 20 mA/g 时的容量分别为 252.6 和 265.9 mAh/g。这项工作展示了一种用于开发稳定且高容量的 Mg 离子电池阴极的离子掺杂方法,并为大规模水系 Mg 离子储能系统提供了潜在的阴极材料。

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