Ji Xiaohao, Wei Yunhong, Yang Haizhao, Lu Zhiyu, Jin Song, Jin Hongchang, Kong Xianghua, Ji Hengxing
School of Chemistry and Chemical Engineering, Hefei University of Technology, Hefei, 230009, P. R. China.
Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, 230026, P. R. China.
Small. 2024 Oct;20(42):e2402616. doi: 10.1002/smll.202402616. Epub 2024 Jun 21.
Hard carbon materials have shown promising potential for sodium-ion storage due to accommodating larger sodium ions. However, as for lithium-ion storage, the challenge lies in tuning the high lithiation plateau capacities, which impacts the overall energy density. Here, hard carbon microspheres (HCM) are prepared by tailoring the cross-linked polysaccharide, establishing a comprehensive methodology to obtain high-performance lithium-ion batteries (LIBs) with long plateau capacities. The "adsorption-intercalation mechanism" for lithium storage is revealed combining in situ Raman characterization and ex situ nuclear magnetic resonance spectroscopy. The optimized HCM possesses reduced defect content, enriched graphitic microcrystalline, and low specific surface area, which is beneficial for fast lithium storage. Therefore, HCM demonstrates a high reversible capacity of 537 mAh g with a significant low-voltage plateau capacity ratio of 55%, high initial Coulombic efficiency, and outstanding rate performance (152 mAh g at 10 A g). Moreover, the full cell (HCM||LiCoO) delivers outstanding fast-charging capability (4 min charge to 80% at 10 C) and impressive energy density of 393 Wh kg. Additionally, 80% reversible capacity can be delivered under -40 °C with competitive cycling stability. This work provides in-depth insights into the rational design of hard carbon structures with extended low-voltage plateau capacity for high energy LIBs.
由于能够容纳更大的钠离子,硬碳材料在钠离子存储方面展现出了广阔的潜力。然而,对于锂离子存储而言,挑战在于调整高锂化平台容量,这会影响整体能量密度。在此,通过对交联多糖进行剪裁制备了硬碳微球(HCM),建立了一种全面的方法来获得具有长平台容量的高性能锂离子电池(LIB)。结合原位拉曼表征和非原位核磁共振光谱揭示了锂存储的“吸附 - 嵌入机制”。优化后的HCM具有减少的缺陷含量、富集的石墨微晶以及低比表面积,这有利于快速锂存储。因此,HCM展现出537 mAh g的高可逆容量,显著的低电压平台容量比为55%,高初始库仑效率以及出色的倍率性能(在10 A g下为152 mAh g)。此外,全电池(HCM||LiCoO)具有出色的快速充电能力(在10 C下4分钟充电至80%)以及393 Wh kg的可观能量密度。此外,在-40°C下可提供80%的可逆容量,且具有有竞争力的循环稳定性。这项工作为合理设计具有扩展低电压平台容量的硬碳结构以用于高能LIB提供了深入见解。