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Threshold-like dependence of silicon-based electrode performance on active mass loading and nature of carbon conductive additive

机译:硅基电极性能对活性物质负载和碳导电添加剂性质的阈值依赖性

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摘要

Silicon-based electrodes of various areal capacities, from about 1.5 to 15 mAh.cm(-2), were prepared with different conductive additives (carbon black, carbon nanofibers, and carbon nanoplatelets). The sensitivity of the cycling performance to the active mass loading is significant, with a major decrease of the capacity retention with increasing the loading in all cases. There is moreover a critical loading value above which the capacity retention abruptly drops. This critical loading depends on the conductive additive (similar to 1.75 mg cm(-2) for carbon black, similar to 2.25 mg cm(-2) for carbon nanofibers and similar to 3 mg cm(-2) for carbon nanoplatelets). The lower capacity retention capability for thicker electrode is attributed to (i) higher mechanical stresses within the electrode films and at the interface with the current collector and to (ii) poorer cohesion of electrodes with higher active silicon loading. Better capacity retention of electrodes with carbon nanoplatelets is attributed to (i) higher initial cohesion of the electrodes and to (ii) good ability of the electrode architecture to reversibly expand/contract upon cycling as shown by in situ electrochemical dilatometry. The efficiency of carbon nanoplatelets as conductive additive allows decreasing its amount in the electrode formulation to 6 wt% without sacrificing cycling performance. Contribution of carbon additives to the mechanical properties of the electrode is as important as their contribution to the electrical properties for silicon. (C) 2016 Elsevier Ltd. All rights reserved.
机译:使用不同的导电添加剂(炭黑,碳纳米纤维和碳纳米片)制备了各种面积容量约为1.5至15 mAh.cm(-2)的硅基电极。在所有情况下,循环性能对有效质量负载的敏感性都很高,容量保持率随负载的增加而大大降低。此外,还有一个临界负载值,超过该临界值,容量保持力会突然下降。此临界载荷取决于导电添加剂(炭黑类似于1.75 mg cm(-2),碳纳米纤维类似于2.25 mg cm(-2),碳纳米薄片类似于3 mg cm(-2))。较厚的电极的较低的容量保持能力归因于(i)电极膜内以及与集电器的界面处的较高的机械应力,以及(ii)具有较高的活性硅负载的较弱的电极内聚力。具有碳纳米片的电极的更好的容量保持性归因于(i)电极的更高的初始内聚力和(ii)如原位电化学膨胀法所示,电极结构在循环时具有可逆地膨胀/收缩的良好能力。碳纳米片作为导电添加剂的效率可以在不牺牲循环性能的情况下将其在电极配方中的含量减少至6 wt%。碳添加剂对电极机械性能的贡献与其对硅的电性能的贡献一样重要。 (C)2016 Elsevier Ltd.保留所有权利。

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