Merabet Hocine, De Luna Yannis, Mohamed Khadiga, Bensalah Nasr
Department of Mathematics, Statistics and Physics, College of Arts and Sciences, Qatar University, Doha P.O. Box 2713, Qatar.
Department of Chemistry and Earth Sciences, College of Arts and Sciences, Qatar University, Doha P.O. Box 2713, Qatar.
Materials (Basel). 2021 May 25;14(11):2824. doi: 10.3390/ma14112824.
Silicon and silicon nitride (SiN) are some of the most appealing candidates as anode materials for LIBs (Li-ion battery) due to their favorable characteristics: low cost, abundance of Si, and high theoretical capacity. However, these materials have their own set of challenges that need to be addressed for practical applications. A thin film consisting of silicon nitride-coated silicon on a copper current collector (SiN@Si@Cu) has been prepared in this work via RF magnetron sputtering (Radio Frequency magnetron sputtering). The anode material was characterized before and after cycling to assess the difference in appearance and composition using XRD (X-ray Powder Diffraction), XPS (X-ray Photoelectron Spectroscopy), SEM/EDX (Scanning Electron Microscopy/ Energy Dispersive X-Ray Analysis), and TEM (Transmission Electron Microscopy). The effect of the silicon nitride coating on the electrochemical performance of the anode material for LIBs was evaluated against Si@Cu film. It has been found that the SiN@Si@Cu anode achieved a higher capacity retention (90%) compared to Si@Cu (20%) after 50 cycles in a half-cell versus Li/Li, indicating a significant improvement in electrochemical performance. In a full cell, the SiN@Si@Cu anode achieved excellent efficiency and acceptable specific capacities, which can be enhanced with further research.
硅和氮化硅(SiN)因其有利特性:低成本、硅储量丰富以及高理论容量,成为锂离子电池(LIB)阳极材料中最具吸引力的候选材料之一。然而,这些材料在实际应用中存在一系列需要解决的挑战。在这项工作中,通过射频磁控溅射法制备了一种由铜集流体上的氮化硅包覆硅组成的薄膜(SiN@Si@Cu)。使用X射线粉末衍射(XRD)、X射线光电子能谱(XPS)、扫描电子显微镜/能量色散X射线分析(SEM/EDX)和透射电子显微镜(TEM)对阳极材料在循环前后进行表征,以评估其外观和成分的差异。针对Si@Cu薄膜,评估了氮化硅涂层对LIBs阳极材料电化学性能的影响。研究发现,在与Li/Li的半电池中循环50次后,SiN@Si@Cu阳极的容量保持率(90%)高于Si@Cu(20%),表明其电化学性能有显著改善。在全电池中,SiN@Si@Cu阳极实现了优异的效率和可接受的比容量,通过进一步研究可使其得到提高。