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金属有机框架衍生的多孔碳纳米纤维包裹锡纳米颗粒作为锂/钠离子电池的柔性阳极。

MOF-derived porous carbon nanofibers wrapping Sn nanoparticles as flexible anodes for lithium/sodium ion batteries.

作者信息

Zhu Shaoqing, Huang Aoming, Wang Qian, Xu Ye

机构信息

School of Mechanical Engineering and Automation, Beihang University, Beijing 100191, People's Republic of China.

Key Laboratory of Flexible Electronics (KLOFE) and Institute of Advanced Materials (IAM), School of Physical and Mathematical Sciences, Nanjing Tech University (NanjingTech), Nanjing 211800, People's Republic of China.

出版信息

Nanotechnology. 2021 Apr 16;32(16):165401. doi: 10.1088/1361-6528/abd8f8.

Abstract

Facile synthesis of flexible electrodes with high reversible capacity plays a key role in meeting the ever-increasing demand for flexible batteries. Herein, we incorporated Sn-based metal-organic framework (Sn-MOF) templates into crosslinked one-dimensional carbon nanofibers (CNFs) using an electrospinning strategy and obtained a hierarchical porous film (Sn@C@CNF) after a carbothermal reduction reaction. Merits of this modification strategy and its mechanism in improving the electrochemical performance of Sn nanoparticles (NPs) were revealed. Electrospun CNFs substrate ensured a highly conductive skeleton and excellent mechanical toughness, making Sn@C@CNF a self-supported binder-free electrode. Serving as a self-sacrificing template, Sn-MOF provided Sn NPs and derived into porous structures on CNFs after pyrolysis. The hierarchical porous structure of the carbon substrate was beneficial to enhancing the Li/Na storage of the active materials, and the carbon wrappings derived from polyacrylonitrile (PAN) nanofibers and the MOF skeleton could jointly accommodate the violent volume variation during cycling, enabling Sn@C@CNF to have excellent cycle stability. The Sn@C@CNF anode exhibited a stable discharge specific capacity of 610.8 mAh g under 200 mA g for 180 cycles in lithium ion batteries (LIBs) and 360.5 mAh g under 100 mA g after 100 cycles in sodium ion batteries (SIBs). As a flexible electrode, Sn@C@CNF demonstrated a stable electromechanical response to repeated 'bending-releasing' cycles and excellent electrochemical performance when assembled in a soft-pack half-LIB. This strategy provided promising candidates of active materials and fabrication methods for advanced flexible batteries.

摘要

简便合成具有高可逆容量的柔性电极对于满足对柔性电池不断增长的需求起着关键作用。在此,我们采用静电纺丝策略将锡基金属有机框架(Sn-MOF)模板引入交联的一维碳纳米纤维(CNF)中,并在碳热还原反应后获得了一种分级多孔薄膜(Sn@C@CNF)。揭示了这种改性策略及其在改善锡纳米颗粒(NP)电化学性能方面的机制优点。静电纺丝的CNF基底确保了高导电骨架和优异的机械韧性,使Sn@C@CNF成为一种自支撑的无粘结剂电极。作为自牺牲模板,Sn-MOF提供了Sn NPs,并在热解后在CNF上衍生出多孔结构。碳基底的分级多孔结构有利于提高活性材料的锂/钠存储能力,并且由聚丙烯腈(PAN)纳米纤维和MOF骨架衍生的碳包裹层可以共同适应循环过程中的剧烈体积变化,使Sn@C@CNF具有优异的循环稳定性。Sn@C@CNF阳极在锂离子电池(LIB)中,在200 mA g下180次循环时表现出稳定的放电比容量为610.8 mAh g,在钠离子电池(SIB)中,在100 mA g下100次循环后表现出360.5 mAh g。作为柔性电极,Sn@C@CNF在组装成软包半LIB时,对重复的“弯曲-释放”循环表现出稳定的机电响应和优异的电化学性能。该策略为先进柔性电池提供了有前景的活性材料候选物和制备方法。

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