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通过将硒封装到微孔多通道碳纳米纤维中制备的独立式长寿命钠硒阴极。

A Freestanding and Long-Life Sodium-Selenium Cathode by Encapsulation of Selenium into Microporous Multichannel Carbon Nanofibers.

作者信息

Yuan Beibei, Sun Xizhen, Zeng Linchao, Yu Yan, Wang Qingsong

机构信息

State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei, Anhui, 230026, China.

Key Laboratory of Materials for Energy Conversion, Chinese Academy of Sciences (CAS), Department of Materials Science and Engineering, University of Science and Technology of China, Hefei, Anhui, 230026, China.

出版信息

Small. 2018 Mar;14(9). doi: 10.1002/smll.201703252. Epub 2017 Dec 27.

Abstract

Selenium cathode has attracted more and more attention because of its comparable volumetric capacity but much higher electrical conductivity than sulfur cathode. Compared to Li-Se batteries, Na-Se batteries show many advantages, including the low cost of sodium resources and high volumetric capacity. However, Na-Se batteries still suffer from the shuttle effect of polyselenides and high volumetric expansion, resulting in the poor electrochemical performance. Herein, Se is impregnated into microporous multichannel carbon nanofibers (Se@MCNFs) thin film with high flexibility as a binder-free cathode material for Na-Se batteries. The fibrous unique structure of the Se@MCNFs is beneficial to alleviate the volume change of Se during cycling, improve the utilization of active material, and suppress the dissolution of polyselenides into electrolyte. The freestanding Se@MCNF thin-film electrode exhibits high discharge capacity (596 mA h g at the 100th cycle at 0.1 A g ) and excellent rate capability (379 mA h g at 2 A g ) for Na-Se batteries. In addition, it also shows long cycle life with a negligible capacity decay of 0.067% per cycle over 300 cycles at 0.5 A g . This work demonstrates the possibility to develop high performance Na-Se batteries and flexible energy storage devices.

摘要

硒阴极因其可比的体积容量但比硫阴极高得多的电导率而受到越来越多的关注。与锂硒电池相比,钠硒电池具有许多优点,包括钠资源成本低和体积容量高。然而,钠硒电池仍然受到多硒化物的穿梭效应和高体积膨胀的影响,导致电化学性能较差。在此,将硒浸渍到具有高柔韧性的微孔多通道碳纳米纤维(Se@MCNFs)薄膜中,作为钠硒电池的无粘结剂阴极材料。Se@MCNFs的纤维独特结构有利于缓解循环过程中硒的体积变化,提高活性材料的利用率,并抑制多硒化物溶解到电解质中。独立的Se@MCNF薄膜电极对钠硒电池表现出高放电容量(在0.1 A g下第100次循环时为596 mA h g)和优异的倍率性能(在2 A g下为379 mA h g)。此外,在0.5 A g下300次循环中,它还显示出长循环寿命,每循环容量衰减可忽略不计,为0.067%。这项工作证明了开发高性能钠硒电池和柔性储能装置的可能性。

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