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具有分层碳纳米管相互连接的超多孔海绵作为高性能钾离子电池负极

Hyperporous Sponge Interconnected by Hierarchical Carbon Nanotubes as a High-Performance Potassium-Ion Battery Anode.

机构信息

Department of Materials Science and Engineering, College of Engineering, Peking University, Beijing, 100871, China.

出版信息

Adv Mater. 2018 Aug;30(32):e1802074. doi: 10.1002/adma.201802074. Epub 2018 Jun 27.

Abstract

Recently, commercial graphite and other carbon-based materials have shown promising properties as the anode for potassium-ion batteries. A fundamental problem related to those carbon electrodes, significant volume expansion, and structural instability/collapsing caused by cyclic K-ion intercalation, remains unsolved and severely limits further development and applications of K-ion batteries. Here, a multiwalled hierarchical carbon nanotube (HCNT) is reported to address the issue, and a reversible specific capacity of 232 mAh g , excellent rate capability, and cycling stability for 500 cycles are achieved. The key structure of the HCNTs consists of an inner CNT with dense-stacked graphitic walls and a loose-stacked outer CNT with more disordered walls, and individual HCNTs are further interconnected into a hyperporous bulk sponge with huge macropore volume, high conductivity, and tunable modulus. It is discovered that the inner dense-CNT serves as a robust skeleton, and collectively, the outer loose-CNT is beneficial for K-ion accommodation; meanwhile the hyperporous sponge facilitates reaction kinetics and offers stable surface capacitive behavior. The hierarchical carbon nanotube structure has great potential in developing high-performance and stable-structure electrodes for next generation K and other metal-ion batteries.

摘要

最近,商业石墨和其他碳基材料作为钾离子电池的阳极显示出了有前景的性能。与这些碳电极相关的一个基本问题是,循环 K 离子嵌入会导致显著的体积膨胀和结构不稳定性/坍塌,这个问题仍然没有得到解决,严重限制了钾离子电池的进一步发展和应用。在这里,报道了一种多壁分层碳纳米管(HCNT)来解决这个问题,并实现了 232 mAh g-1 的可逆比容量、优异的倍率性能和 500 次循环的循环稳定性。HCNTs 的关键结构由具有密集堆叠石墨壁的内 CNT 和具有更多无序壁的疏松堆叠外 CNT 组成,并且单个 HCNTs 进一步互连成具有大孔体积、高导电性和可调模量的超多孔块状海绵。研究发现,内致密 CNT 作为一个坚固的骨架,而外疏松 CNT 有利于 K 离子的容纳;同时,超多孔海绵促进了反应动力学,并提供了稳定的表面电容行为。分层碳纳米管结构在开发下一代钾和其他金属离子电池的高性能和稳定结构电极方面具有巨大的潜力。

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