State Key Laboratory of Organic-Inorganic Composites, Beijing University of Chemical Technology, Beijing 100029, China.
Nanoscale. 2017 Sep 14;9(35):13298-13304. doi: 10.1039/c7nr04912a.
High gravimetric energy density and volumetric energy density energy storage devices are highly desirable due to the rapid development of electric vehicles, and portable and wearable electronic equipment. Electrospinning is a promising technology for preparing freestanding electrodes with high gravimetric and volumetric energy density. However, the energy density of the traditional electrospun electrodes is restricted by the low mass loading of active materials (e.g. 20%-30 wt%). Herein, a biomimetic strategy inspired by the phenomenon of the sticky spider web is demonstrated as a high performance anode, which simultaneously improves the gravimetric and volumetric energy density. Freestanding carbon nanofiber (CNF) membranes containing over 50 wt% of bismuth were prepared by electrospinning and subsequent thermal treatment. Membranes consisting of CNF network structures bonded tightly with active Bi cluster materials, resulting in excellent mechanical protection and a fast charge transport path, which are difficult to achieve simultaneously. The composite membrane delivers high reversible capacity (483 mA h g at 100 mA g after 200 cycles) and high rate performance (242 mA h g at 1 A g) as a lithium-ion battery anode. For use as a sodium ion battery, the composite membrane also shows a high reversible specific capacity of 346 mA h g and outstanding cycling performance (186 mA h g at 50 mA g after 100 cycles). This work offers a simple, low cost and eco-friendly method for fabricating free-standing and binder-free composite electrodes with high loading used in LIBs and SIBs.
由于电动汽车、便携式和可穿戴电子设备的快速发展,高重量和体积能量密度的储能装置是非常理想的。静电纺丝是一种很有前途的技术,可用于制备具有高重量和体积能量密度的独立电极。然而,传统静电纺丝电极的能量密度受到活性材料质量负载低的限制(例如 20%-30wt%)。在此,展示了一种受粘性蜘蛛网现象启发的仿生策略,作为高性能阳极,同时提高了重量和体积能量密度。通过静电纺丝和随后的热处理制备了含有超过 50wt%铋的独立碳纳米纤维(CNF)膜。由 CNF 网络结构组成的膜与活性 Bi 团簇材料紧密结合,形成了优异的机械保护和快速电荷传输路径,这两者很难同时实现。该复合膜作为锂离子电池阳极具有高可逆容量(在 100 mA g 下 200 次循环后为 483 mA h g)和高倍率性能(在 1 A g 下为 242 mA h g)。作为钠离子电池,该复合膜还表现出 346 mA h g 的高可逆比容量和出色的循环性能(在 50 mA g 下 100 次循环后为 186 mA h g)。这项工作为制造用于 LIB 和 SIB 的高负载、独立和无粘合剂的复合电极提供了一种简单、低成本和环保的方法。