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利用普鲁士蓝类似物阴极中的熵和晶体结构工程来推进钠离子电池

Leveraging Entropy and Crystal Structure Engineering in Prussian Blue Analogue Cathodes for Advancing Sodium-Ion Batteries.

作者信息

He Yueyue, Dreyer Sören L, Akçay Tolga, Diemant Thomas, Mönig Reiner, Ma Yuan, Tang Yushu, Wang Huifeng, Lin Jing, Schweidler Simon, Fichtner Maximilian, Hahn Horst, Brezesinski Torsten, Breitung Ben, Ma Yanjiao

机构信息

Institute of Nanotechnology (INT), Karlsruhe Institute of Technology (KIT), Kaiserstr. 12, Karlsruhe 76131, Germany.

Institute for Applied Materials (IAM), Karlsruhe Institute of Technology (KIT), Kaiserstr. 12, Karlsruhe 76131, Germany.

出版信息

ACS Nano. 2024 Sep 3;18(35):24441-24457. doi: 10.1021/acsnano.4c07528. Epub 2024 Aug 22.

Abstract

The synergistic engineering of chemical complexity and crystal structures has been applied to Prussian blue analogue (PBA) cathodes in this work. More precisely, the high-entropy concept has been successfully introduced into two structure types of identical composition, namely, cubic and monoclinic. Through the utilization of a variety of complementary characterization techniques, a comprehensive investigation into the electrochemical behavior of the cubic and monoclinic PBAs has been conducted, providing nuanced insights. The implementation of the high-entropy concept exhibits crucial selectivity toward the intrinsic crystal structure. Specifically, while the overall cycling stability of both cathode systems is significantly improved, the synergistic interplay of crystal structure engineering and entropy proves particularly significant. After optimization, the cubic PBA demonstrates structural advantages, showcasing good reversibility, minimal capacity loss, high thermal stability, and unparalleled endurance even under harsh conditions (high specific current and temperature).

摘要

在这项工作中,化学复杂性和晶体结构的协同工程已应用于普鲁士蓝类似物(PBA)阴极。更确切地说,高熵概念已成功引入到两种相同组成的结构类型中,即立方晶系和单斜晶系。通过使用各种互补的表征技术,对立方和单斜PBA的电化学行为进行了全面研究,提供了细微的见解。高熵概念的实施对本征晶体结构表现出至关重要的选择性。具体而言,虽然两个阴极系统的整体循环稳定性都得到了显著提高,但晶体结构工程和熵的协同相互作用被证明尤为重要。经过优化,立方PBA展现出结构优势,表现出良好的可逆性、最小的容量损失、高的热稳定性,甚至在恶劣条件下(高比电流和温度)也具有无与伦比的耐久性。

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