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Ultrafine Amorphous SnOx Embedded in Carbon Nanofiber/Carbon Nanotube Composites for Li-Ion and Na-Ion Batteries

机译:嵌入锂离子和钠离子电池的碳纳米纤维/碳纳米管复合材料中的超细非晶SnOx

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Core-shell-structured, ultrafine SnOx/carbon nanofiber (CNF)/carbon nanotube composite films are in situ synthesized by electrospinning through a dual nozzle. The carbon shell layer functions as a buffer to prevent the separation of SnOx particles from the CNF core, allowing full utilization of high-capacity SnOx in both Li-ion and Na-ion batteries. The composite electrodes reveal an anomalous Li- and Na-ion storage mechanism where all the intermediate phases, like LixSn and NaxSn alloys, maintain amorphous states during the entire charge/discharge process. The uniform dispersion on an atomic scale and the amorphous state of the SnOx particles remain intact in the carbon matrix without growth or crystallization even after 300 cycles, which is responsible for sustaining excellent capacity retention of the electrodes. These discoveries not only shed new insights into fundamental understanding of the electrochemical behavior of SnOx electrodes but also offer a potential strategy to improve the cyclic stability of other types of alloy anodes that suffer from rapid capacity decays due to large volume changes.
机译:通过双喷嘴的电纺丝原位合成核-壳结构的超细SnOx /碳纳米纤维(CNF)/碳纳米管复合膜。碳壳层用作缓冲层,以防止SnOx颗粒与CNF核分离,从而可在锂离子和Na离子电池中充分利用高容量的SnOx。复合电极显示出异常的锂离子和钠离子存储机制,其中所有中间相(如LixSn和NaxSn合金)在整个充电/放电过程中均保持非晶态。即使在300次循环后,原子尺度上的均匀分散和SnOx颗粒的非晶态仍在碳基质中保持完整,而没有生长或结晶,这有助于维持极好的电极容量。这些发现不仅为对SnOx电极的电化学行为的基本理解提供了新的见解,而且还提供了一种潜在的策略来提高其他类型的合金阳极的循环稳定性,这些合金阳极由于体积变化而导致容量迅速下降。

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