Composites As High Energy Density Anodes for Li-Ion: Si/Graphite Vs. Si/Amorphous C/Rgo

材料科学 石墨烯 石墨 阳极 拉曼光谱 无定形碳 扫描电子显微镜 复合材料 锂离子电池 碳纤维 氧化物 化学工程 电极 电池(电) 纳米技术 复合数 冶金 化学 工程类 物理化学 物理 功率(物理) 光学 量子力学
作者
Nekane Nieto,Iratxe de Meatza,Imanol Landa‐Medrano,Susana Sananes-Israel,Verónica Palomares,Teófilo Rojo
出处
期刊:Meeting abstracts 卷期号:MA2021-01 (53): 2105-2105
标识
DOI:10.1149/ma2021-01532105mtgabs
摘要

High energy density anodes for Li-ion technology are the next step to achieve battery-based electric transportation with longer driving range. The substitution of graphite by Si-based materials could lead to a 20% improvement on the volumetric energy density of the battery, from 700 Wh/L (graphite anode) to 900 Wh/L (Si-based anode). However, Si anodes present some problems that must be solved in order to achieve generalized commercial market acceptance. The huge volume change that Si undergoes when alloying with lithium (about 300%) causes electrode cracking and pulverization and limits the cycle life of the electrode. This work compares the efficiency of two different Si-based composites to prevent electrode degradation and enhance the cycle life. Both composite materials were prepared with similar proportions of the same Si nanopowder (~100 nm) supplied by Tekna [1] . The first sample consists in a mixture of Si nanopowder with graphite, whereas the second material comprises Si/amorphous carbon/reduced graphene oxide (rGO). The synthesis process of the latter sample includes the mixture of Si nanopowder with an organic carbon source in a water-based suspension of graphene oxide that is subsequently annealed in inert atmosphere at 900º C. Structural and morphological characterization of the prepared materials includes X-ray diffraction (XRD), scanning electron microscopy (SEM) and Raman spectroscopy. The degree of order present in the carbon of the samples was obtained from XRD and Raman spectroscopy. The comparison of these data showed the very different nature of the carbon in both composites; graphite was significantly ordered while the carbon generated from an organic source was much closer to a hard carbon. Analysis of the SEM images showed the distribution of Si nanoparticles in the carbonaceous matrix (graphite or amorphous C/rGO). Electrochemical galvanostatic tests were also performed in 2032 coin cells in half cell configuration vs. metallic lithium at C/3 rate for 150 cycles. Initial coulombic efficiency at C/20 formation cycle and specific capacity, cycle life and capacity retention were examined for both composite materials (Fig. 1) . The differences found in the electrochemical performance between the two composites were related to the observed structural and morphological features of the carbonaceous fraction. The high initial capacity loss observed (53 %) for the Si/C/rGO composite and the substantially low electroactivity of this carbonaceous fraction ( vs. specific capacity of 350 mAh/g for graphite) hindered the overall energy density of this composite anode electrode. On the other hand ( Fig.1c ), the Si/C/rGO electrode retained above 99% of the initial specific capacity after 150 cycles at C/3 (2190 mAh/g-Si) in comparison with 65% capacity retention for the Si/Gr anode (421 mAh/g-Si/Gr) with equivalent low Si content (10 wt%). These preliminary findings on increased cycle life by the preparation of Si/C/rGO materials will be applied to higher Si content composite anodes. [1] http://www.tekna.com/ Figure 1 . Formation cycle voltage profiles at C/20 current rate for the (a) Si/Gr and (b) Si/C/rGO anode electrodes with low Si content (~10 wt%). Capacity retention (c) at C/3 cycling. Figure 1

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