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基于一维番红花酸盐的铁基共价有机框架作为锂离子电池的高性能负极材料。

One-Dimensional Croconate-Based Fe-CP as a High-Performance Anode Material for Lithium-Ion Batteries.

作者信息

Zhang Lin, Zhang Xiaofei, Gui Yingcai

机构信息

Henan Key Laboratory of Functional Salt Materials, Center for Advanced Materials Research, Zhongyuan University of Technology, Zhengzhou 450007, China.

出版信息

Polymers (Basel). 2023 Sep 11;15(18):3728. doi: 10.3390/polym15183728.

Abstract

Coordination polymers (CPs) have attracted greater scientific attention as promising electrode materials for lithium-ion batteries (LIBs) due to their diverse and versatile structural chemistry. This study introduces a croconate-based one-dimensional CP, namely [Fe(CO)(HO)]) (referred to as Fe-CP), as an efficient anode material with high-performance characteristics for rechargeable LIBs. The ligand with abundant redox sites coordinating to the transition metal ion endowed the anode material with a remarkable stability in the electrolyte, in addition to high capacity, high-rate capability, and high cycling performance during charging/discharging process. The Fe-CP has a unique chain-based supramolecular structure, setting it apart from other porous three-dimensional molecular materials. The presence of unrestricted channels between the chains facilitates the diffusion of lithium ions in this unique structure. When tested at 100 mA g over a range of voltages between 0.01 and 2.4 V, the Fe-CP anode demonstrated a noteworthy specific capacity of 521 mA h g over 140 cycles. Moreover, the Fe-CP anode material exhibited excellent rate performance and demonstrated favorable cyclability. Following exposure to high charging and discharging rates of 2 A g, the anode ultimately regained its initial capability when the current rate was back at 100 mA g.

摘要

配位聚合物(CPs)因其多样且通用的结构化学性质,作为锂离子电池(LIBs)颇具前景的电极材料,已引起了更多的科学关注。本研究引入了一种基于巴豆酸酯的一维CP,即[Fe(CO)(HO)](简称为Fe-CP),作为一种具有高性能特性的高效阳极材料用于可充电锂离子电池。除了在充电/放电过程中具有高容量、高倍率性能和高循环性能外,具有丰富氧化还原位点的配体与过渡金属离子配位,赋予了阳极材料在电解质中显著的稳定性。Fe-CP具有独特的基于链的超分子结构,使其有别于其他多孔三维分子材料。链间存在无限制的通道,有利于锂离子在这种独特结构中的扩散。当在0.01至2.4 V的电压范围内以100 mA g进行测试时,Fe-CP阳极在140次循环中表现出521 mA h g的显著比容量。此外,Fe-CP阳极材料表现出优异的倍率性能,并具有良好的循环稳定性。在经历2 A g的高充放电速率后,当电流速率恢复到100 mA g时,阳极最终恢复了其初始性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c38/10535239/e8e6c08cfa3d/polymers-15-03728-g001.jpg

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