Abstract

As an approach to surpass the unavoidable capacity fading of native silicon anodes upon cycling, newer anodes such as FeSi 2 (alloy anode), Fe 0.92Mn 0.08Si 2 (doped alloy anode), FeSi 2/graphite and Fe 0.92Mn 0.08Si 2/graphite composite anodes were prepared via mechanical ball milling process. Subsequently, coating of disordered carbon on the parent FeSi 2 and Fe 0.92Mn 0.08Si 2 matrix was carried out through the pyrolysis of PVC. The introduction of co-milling component (8% manganese) as dopant into the parent FeSi 2 structure was found to enhance only the specific capacity values of native FeSi 2 anodes during the initial cycles, whereas the deployment of composite alloy anodes (FeSi 2/graphite and Fe 0.92Mn 0.08Si 2/graphite) and the carbon coated FeSi 2 and Fe 0.92Mn 0.08Si 2 anodes has exhibited good cyclic reversibility (<10%) and excellent coulombic efficiency (>95%) values upon extended cycling. From the set of alloy anodes chosen for the present study, Fe 0.92Mn 0.08Si 2/graphite composite seems to have promising anode capability with an initial discharge capacity of 547 mAh/g followed by minimal capacity fade. It is believed that graphite plays an important role of buffering the volume expansion of alloy anodes and the carbon coating enhances the interface strength between electrode active material and current collector so as to realize improved electrochemical properties of alloy anodes upon extended cycling.

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