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Spherical Sn-Ni-C alloy anode material with submicro/micro complex particle structure for lithium secondary batteries

机译:具有亚微/微复合颗粒结构的锂二次电池球形Sn-Ni-C合金负极材料

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Submicro/micro-scaled spherical Sn-Ni-C alloy powders synthesized from oxides of Sn and Ni via carbothermal reduction at 900 degrees C were examined for use as anode materials in Li-ion battery. The synthesized spherical Sn-Ni-C particles show a loose micro-sized structure and a multi-phase composition. The reaction product carbon oxide gases yielded in the carbothermal reduction process should be responsible to the loose structure characteristics of Sn-Ni-C particles. The prepared Sn-Ni-C alloy composite electrode exhibits a stable reversible capacity of 310 mA h g(-1) at constant current density of 100 mA g(-1), and can be retained at 290 mA h g(-1) after 25 cycles. The space existing in loose particle can accommodate the large volume changes during charge/discharge cycling. The ductile component Ni plays as a buffer to relieve the mechanical stress induced by the large volume changes upon cycling. The remained carbon can prevent the aggregation between small alloy particles. All these factors contribute greatly to the excellent cycling stability of Sn-Ni-C alloy electrode. This carbothermal reduction method is simple, cheap and mass-productive, thus suitable to large scale production of alloy anode powders used for lithium ion batteries. (c) 2007 Elsevier B.V. All rights reserved.
机译:研究了由锡和镍的氧化物通过900摄氏度的碳热还原合成的亚微米/微米级球形Sn-Ni-C合金粉末,用作锂离子电池的负极材料。合成的球形Sn-Ni-C颗粒显示出松散的微尺寸结构和多相组成。碳热还原过程中产生的反应产物二氧化碳气体应负责Sn-Ni-C颗粒的疏松结构特征。所制备的Sn-Ni-C合金复合电极在100 mA g(-1)的恒定电流密度下显示出310 mA hg(-1)的稳定可逆容量,并且在25后可以保持在290 mA hg(-1)周期。松散颗粒中存在的空间可以适应充电/放电循环期间的大体积变化。延展性成分Ni起到缓冲作用,可减轻循环时较大的体积变化引起的机械应力。残留的碳可以防止小合金颗粒之间的聚集。所有这些因素极大地有助于Sn-Ni-C合金电极的出色循环稳定性。这种碳热还原方法简单,便宜且可大量生产,因此适合大规模生产用于锂离子电池的合金负极粉末。 (c)2007 Elsevier B.V.保留所有权利。

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