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应变自适应铁硒化物用于稳定的钠离子电池,具有令人印象深刻的初始库仑效率。

Strain Self-Adaptive Iron Selenides Toward Stable Na-Ion Batteries with Impressive Initial Coulombic Efficiency.

作者信息

Xiao Ying, Miao Yue, Gong Fenglian, Zhang Tonghui, Zhou Luoyuan, Yu Qingtao, Hu Shilin, Chen Shimou

机构信息

State Key Laboratory of Organic-Inorganic Composites, Beijing Key Laboratory of Electrochemical Process and Technology for Materials, College of Materials Science and Engineering, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.

出版信息

Small. 2024 Aug;20(31):e2311703. doi: 10.1002/smll.202311703. Epub 2024 Mar 8.

DOI:10.1002/smll.202311703
PMID:38459649
Abstract

High tap density electrodes play a vital role in developing rechargeable batteries with high volumetric capacities, however, developing advanced electrodes with satisfied capacity, excellent structural stability, and achieving the resulted batteries with a high initial Coulombic efficiency (ICE) and good rate capability with long lifespan simultaneously, are still an intractable challenge. Herein, an ultrahigh ICE of 94.1% and stable cycling of carbon-free iron selenides anode is enabled with a high tap density of 2.57 g cm up to 4000 cycles at 5 A g through strain-modulating by constructing a homologous heterostructure. Systematical characterization and theoretical calculation show that the self-adaptive homologous heterointerface alleviates the stress of the iron selenide anodes during cycling processes and subsequently improves the stability of the assembled batteries. Additionally, the well-formed homologous heterostructure also contributes to the rapid Na diffusion kinetic, increased charge transfer, and good reversibility of the transformation reactions, endowing the appealing rate capability of carbon-free iron selenides. The proposed design strategy provides new insight and inspiration to aid in the ongoing quest for advanced electrode materials with high tap densities and excellent stability.

摘要

高振实密度电极在开发具有高体积容量的可充电电池中起着至关重要的作用,然而,开发具有满意容量、优异结构稳定性的先进电极,并同时使所得电池具有高初始库仑效率(ICE)和良好的倍率性能以及长寿命,仍然是一项棘手的挑战。在此,通过构建同源异质结构进行应变调制,无碳硒化铁阳极在5 A g下实现了94.1%的超高ICE和高达4000次循环的稳定循环,振实密度高达2.57 g cm。系统表征和理论计算表明,自适应同源异质界面减轻了硒化铁阳极在循环过程中的应力,进而提高了组装电池的稳定性。此外,形成良好的同源异质结构也有助于快速的钠扩散动力学、增加的电荷转移以及转化反应的良好可逆性,赋予了无碳硒化铁吸引人的倍率性能。所提出的设计策略为寻求具有高振实密度和优异稳定性的先进电极材料提供了新的见解和灵感。

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