Self-standing and high-performance B4C/Sn/acetylene black@reduced graphene oxide films as sodium-ion half/full battery anodes

石墨烯 材料科学 炭黑 氧化物 阳极 乙炔 离子 电池(电) 钠离子电池 化学工程 无机化学 纳米技术 复合材料 电极 冶金 化学 物理化学 有机化学 物理 法拉第效率 工程类 天然橡胶 功率(物理) 量子力学
作者
Yu Sun,Yanling Yang,Xiao‐Lei Shi,Guoquan Suo,Siyu Lu,Zhi‐Gang Chen
出处
期刊:Applied Materials Today [Elsevier BV]
卷期号:24: 101137-101137 被引量:14
标识
DOI:10.1016/j.apmt.2021.101137
摘要

Sn-based materials show great potentials as sodium-ion battery (SIB) anodes. However, limited to the preparation process and expensive raw materials, it is a great challenge to large-scale produce self-standing Sn-based materials. Herein, we develop a cost-effective and large-scale production method to fabricate flexible B4C/Sn/acetylene [email protected] graphene oxide (B4C/Sn/[email protected]) films as self-standing SIB anodes by using high energy ball milling technology and self-standing process. In the film, the coated B4C acts as a conductor to enhance the internal conductivity and AB is used as a shell of B4C/Sn to accelerate the absorption of electrolyte solution, while rGO plays a role as a tie to connect B4C/Sn/AB units to accelerate the electronic transmission and simultaneously alleviate the volume expansion during the charge/discharge process. Finally, the B4C/Sn/[email protected] films as the SIB anodes deliver a high reversible capacity of 393.4 mA h g−1 at 0.1 A g−1 and excellent cycling stability at 1 A g−1 with the reversible capacity of 155.5 mA h g−1 over 500 cycles. Moreover, the assembled sodium-ion full cell shows a stable capacity at 201.5 mA h g−1 for 50 cycles at 0.1 A g−1. This study indicates that our synthetic B4C/Sn/[email protected] film has a great potential as the self-standing SIB anode.
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