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通过ZnO表面改性实现的用于钠离子电池的空气稳定普鲁士白阴极材料

Air-Stable Prussian White Cathode Materials for Sodium-Ion Batteries Enabled by ZnO Surface Modification.

作者信息

Zhang Youcai, Zhou Xing, Yang Chao, Liu Xiaowei, Wang Meilong, Han Jin, Yan Hua, You Ya

机构信息

State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Hubei Wuhan 430070, People's Republic of China.

International School of Materials Science and Engineering, School of Materials Science and Microelectronics, Wuhan University of Technology, Wuhan 430070, People's Republic of China.

出版信息

ACS Appl Mater Interfaces. 2024 Apr 3;16(13):15649-15656. doi: 10.1021/acsami.4c00738. Epub 2024 Mar 25.

Abstract

Iron-based Prussian white (PW) is one of the promising cathodes for sodium-ion batteries, owing to its high capacity and low cost. However, the practical application of PW is hindered by its poor air stability. The metal-oxide coating has been proven to be an effective way to improve the air stability of electrode materials. Whereas, the target electrode materials conventionally need to be dissolved in the aqueous solution to obtain precursor composites and subsequently calcined at a high temperature during the metal-oxide coating process, which could destroy the phase structure of PW as a result of the sodium leaching into the water and thermal decomposition at the high temperature. In this work, we propose a facile method to construct a ZnO surface layer on PW by utilizing ethanol as a solvent and a mild post-treatment temperature. The ZnO coating layer effectively enhances the air stability of PW and induces the formation of the stable interface on PW. The PW-5 wt % ZnO-E (exposed in 60% humidity air after 30 days) cathode demonstrates a much higher capacity retention (94.1%) at 1 C after 200 cycles than that of PW-E (54%). This work lays a solid foundation for further application of PW.

摘要

铁基普鲁士白(PW)因其高容量和低成本,是钠离子电池中颇具前景的阴极材料之一。然而,PW较差的空气稳定性阻碍了其实际应用。金属氧化物涂层已被证明是提高电极材料空气稳定性的有效方法。然而,在金属氧化物涂层过程中,传统的目标电极材料需要溶解在水溶液中以获得前驱体复合材料,随后在高温下煅烧,由于钠会溶入水中以及在高温下发生热分解,这可能会破坏PW的相结构。在这项工作中,我们提出了一种简便的方法,通过使用乙醇作为溶剂并采用温和的后处理温度,在PW上构建ZnO表面层。ZnO涂层有效地提高了PW的空气稳定性,并促使在PW上形成稳定的界面。与PW-E(54%)相比,PW-5 wt% ZnO-E(在60%湿度空气中暴露30天后)阴极在1 C下循环200次后表现出更高的容量保持率(94.1%)。这项工作为PW的进一步应用奠定了坚实的基础。

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