Zeng Tianbiao, Yu Huaibo, Luo Dan, Guan Huibin, He Hanna, Zhang Chuhong
State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute, Sichuan University, Chengdu 610065, China.
ACS Appl Mater Interfaces. 2023 Dec 6;15(48):55779-55789. doi: 10.1021/acsami.3c12613. Epub 2023 Nov 22.
The ever-growing application of miniaturized electric devices calls for the manufacturing of energy storage systems with a high areal energy density. Thick electrode design is a promising strategy to acquire high areal energy density by enhancing active mass loading and minimizing inactive components. However, the sluggish reaction kinetics and poor electrode mechanical stability that are accompanied by the increased electrode thickness remain unsolved problems. Herein, for the first time, we propose a novel chemical cross-linking strategy to fabricate GeP thick electrodes with adjustable electrode thicknesses and active mass loadings for high areal capacity sodium-ion batteries (SIBs). The chemical cross-linking between carboxylic multiwalled carbon nanotubes (CNTs) and pyrolysis cellulose nanofibers (CNFs) forms a 3D network that encloses GeP nanoparticles, which guarantees fast charge transfer, efficient stress relief, and alleviated volume expansion/shrinkage of the electrode. The hierarchical porous structure generates numerous interconnected channels for unfettered Na diffusion, ensuring uncompromised reaction kinetics as the electrode thickness increases. As a result, the ultrathick 1031 μm GeP@C-CNTs-CNFs electrode featuring a mass loading of 18.3 mg cm delivers an ultrahigh areal capacity of 10.58 mAh cm accompanied by superior cycling stability, which outperforms all reported Ge-based electrodes (generally below 1.5 mAh cm). This work sheds insightful light on designing high areal capacity flexible thick electrodes for the applications of miniaturized electric devices.
小型化电子设备的应用日益广泛,这就要求制造具有高面积能量密度的储能系统。厚电极设计是一种很有前景的策略,通过提高活性物质负载量和减少非活性成分来获得高面积能量密度。然而,随着电极厚度增加而出现的反应动力学缓慢和电极机械稳定性差等问题仍未得到解决。在此,我们首次提出一种新颖的化学交联策略,用于制备具有可调电极厚度和活性物质负载量的GeP厚电极,以用于高面积容量的钠离子电池(SIBs)。羧基多壁碳纳米管(CNTs)与热解纤维素纳米纤维(CNFs)之间的化学交联形成了一个三维网络,该网络包裹着GeP纳米颗粒,这保证了快速的电荷转移、有效的应力释放以及减轻电极的体积膨胀/收缩。分级多孔结构产生了许多相互连接的通道,有利于钠离子不受阻碍地扩散,确保随着电极厚度增加,反应动力学不受影响。结果,质量负载为18.3 mg cm的1031 μm超厚GeP@C-CNTs-CNFs电极具有10.58 mAh cm的超高面积容量,并具有优异的循环稳定性,优于所有已报道的锗基电极(通常低于1.5 mAh cm)。这项工作为设计用于小型化电子设备应用的高面积容量柔性厚电极提供了深刻的见解。