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用于高倍率性能锂离子电池的干熄焦的氢稳定化与活化

Hydrogen Stabilization and Activation of Dry-Quenched Coke for High-Rate-Performance Lithium-Ion Batteries.

作者信息

Qin Decai, Huang Fei, Zhu Guoyin, Wang Lei

机构信息

School of Chemistry and Materials Science, Nanjing Normal University, Nanjing 210023, China.

Institute of Advanced Materials and Flexible Electronics (IAMFE), School of Chemistry and Materials Science, Nanjing University of Information Science & Technology, Nanjing 210044, China.

出版信息

Nanomaterials (Basel). 2022 Oct 9;12(19):3530. doi: 10.3390/nano12193530.

Abstract

Lithium-ion batteries (LIBs) have rapidly come to dominate the market owing to their high power and energy densities. However, several factors have considerably limited their widespread commercial application, including high cost, poor high-rate performance, and complex synthetic conditions. Herein, we use earth-abundant and low-cost dry-quenched coke (DQC) to prepare low-crystalline carbon as anode material for LIBs and tailor the carbon skeleton via a facile green and sustainable hydrogen treatment. In particular, DQC is initially pyrolyzed at 1000 °C, followed by hydrogen treatment at 600 °C to obtain C-1000 H-600. The resultant C-1000 H-600 possesses abundant active defect sites and oxygen functional groups, endowing it with high-rate capabilities (C-1000 H-600 vs. commercial graphite: 223.98 vs. 198.5 mAh g at 1 A g with a capacity retention of about 72.79% vs. 58.05%, 196.97 vs. 109.1 mAh g at 2 A g for 64.01% vs. 31.91%), and a stable cycling life (205.5 mAh g for 1000 cycles at 2 A g) for LIBs. This proves that as a simple moderator, hydrogen effectively tailors the microstructure and surface-active sites of carbon materials and transforms low-cost DQC into high-value advanced carbon anodes by a green and sustainable route to improve the lithium storage performance.

摘要

锂离子电池(LIBs)因其高功率和能量密度迅速在市场上占据主导地位。然而,包括高成本、高倍率性能差以及合成条件复杂等几个因素,在很大程度上限制了它们的广泛商业应用。在此,我们使用储量丰富且低成本的干熄焦(DQC)制备低结晶度碳作为LIBs的负极材料,并通过简便、绿色且可持续的氢气处理来调整碳骨架。具体而言,首先将DQC在1000℃下热解,随后在600℃下进行氢气处理以获得C-1000 H-600。所得的C-1000 H-600具有丰富的活性缺陷位点和氧官能团,赋予其高倍率性能(C-1000 H-600与商业石墨相比:在1 A g下为223.98 vs. 198.5 mAh g,容量保持率约为72.79% vs. 58.05%,在2 A g下为196.97 vs. 109.1 mAh g,容量保持率为64.01% vs. 31.91%),以及LIBs稳定的循环寿命(在2 A g下1000次循环后为205.5 mAh g)。这证明氢气作为一种简单的调节剂,能够有效地调整碳材料的微观结构和表面活性位点,并通过绿色且可持续的途径将低成本的DQC转化为高价值的先进碳负极,从而提高锂存储性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e40f/9565598/e5802f016915/nanomaterials-12-03530-g001.jpg

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