Guan Siqi, Xu Chen, Chen Yuanjiang, Zhang Yongjin, Li Lixiang, Zhang Han, An Baigang, Yang Haiming, Zhou Weimin, Sun Chengguo, Ju Dongying, Geng Xin
Institute of Energy Materials and Electrochemistry Research, University of Science and Technology Liaoning Anshan 114051 PR China
Hainan Provincial Key Lab of Fine Chemistry, School of Chemical Engineering and Technology, Hainan University Haikou 570228 China.
Nanoscale Adv. 2023 Jun 22;5(16):4158-4166. doi: 10.1039/d3na00285c. eCollection 2023 Aug 8.
Although silicon has a high volumetric energy density as an anode material for Li-ion batteries, its volumetric expansion and sluggish Li migration kinetics need to be urgently addressed. In this work, cage-like structure materials (HRPOSS) derived from the hydrogen reduction of polyhedral oligomeric silsesquioxane (T8-type POSS) were constructed as an Si@C anode for Li-ion batteries. Benefiting from the intriguing features of the Si/N double gradient and even-distributed silicon, HRPOSS-6 exhibited faint volume changes and fast ion-electron kinetics. Moreover, the uniformly immobilized nano-silicic and concentration gradient were favorable for accelerated ion migration. Therefore, HRPOSS-6 exhibited good electrochemical performances given that its cage structure could relieve the volume expansion. HRPOSS-6 demonstrated a high reversible capacity of 1814.1 mA h g and long cycling performance after 200 cycles with 635 mA h g at a current density of 0.5 A g. Accordingly, this Si/C/N composite exhibited great potential for high energy Li-ion batteries, where the corresponding full-cell (HRPOSS-6//LiNiCoMnO) showed a cycle life of 200 cycles with over 80% capacity retention at rate of 1C. This work exploits the concentration gradients of dual elements for the capacity improvement of Si anodes and offers insight into the development of high-performance Si@C anode materials for advanced Li-ion batteries.
尽管硅作为锂离子电池的负极材料具有较高的体积能量密度,但其体积膨胀和缓慢的锂迁移动力学问题亟待解决。在这项工作中,通过对多面体低聚倍半硅氧烷(T8型POSS)进行氢还原得到的笼状结构材料(HRPOSS)被构建为锂离子电池的Si@C负极。得益于Si/N双梯度和硅均匀分布的有趣特性,HRPOSS-6表现出微弱的体积变化和快速的离子-电子动力学。此外,均匀固定的纳米硅和浓度梯度有利于加速离子迁移。因此,鉴于其笼状结构可以缓解体积膨胀,HRPOSS-6表现出良好的电化学性能。HRPOSS-6在0.5 A g的电流密度下,经过200次循环后,可逆容量高达1814.1 mA h g,循环性能良好,容量为635 mA h g。相应地,这种Si/C/N复合材料在高能量锂离子电池方面展现出巨大潜力,其对应的全电池(HRPOSS-6//LiNiCoMnO)在1C倍率下循环寿命为200次,容量保持率超过80%。这项工作利用双元素浓度梯度提高了硅负极的容量,并为开发用于先进锂离子电池的高性能Si@C负极材料提供了思路。