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Cellulose-derived tin-oxide-nanoparticle-embedded carbon fibers as binder-free flexible Li-ion battery anodes

机译:纤维素衍生的氧化锡 - 纳米颗粒 - 嵌入式碳纤维作为无粘合剂的柔性锂离子电池阳极

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摘要

Cellulose has attracted attention as a biomass carbon precursor owing to its abundant reserves and unique properties such as a hierarchical fibrous structure and good mechanical properties. Here, we fabricate cellulose-derived carbon fibers via a facile electrospinning and carbonization process by using cellulose acetate precursor. The prepared carbon fibers are directly used as binder-free flexible anodes for Li ion batteries. They exhibit a high initial reversible specific capacity of 555mAhg(-1) with better cycling stability than carbonized commercial cellulose electrodes. To design extensive lithium storage electrodes, cellulose-derived carbon fiber/SnO2 composites are fabricated through electrospinning. In order to prevent the degradation of the active material, we encapsulate SnO2 nanoparticles in cellulose-derived carbon fibers with a large amount of SnO2 (46.4wt%), which is evenly dispersed in the fibrous carbon matrix. Cellulose-derived carbon fiber/SnO2 electrodes reveal a high reversible capacity of 667mAhg(-1) and stable cycling retention of 76% over 100 cycles at 200mAg(-1), which signify much better cycling performance than commercial SnO2 nanoparticles. These properties are reflected in the advantages of cellulose-derived carbon fiber/SnO2 composite electrodes such as high reactivity, good mechanical properties, and high electrical conductivity that originate from the cellulose-based fibril nanostructure.
机译:由于其丰富的储备和独特的性能,纤维素在生物质碳前体如等级纤维结构和良好的机械性能,因此引起了纤维素作为生物质碳前体的注意力。这里,我们通过使用醋酸纤维素前体通过容易静电纺丝和碳化过程制造纤维素衍生的碳纤维。制备的碳纤维直接用作对Li离子电池的无粘合剂的柔性阳极。它们具有555mAhg(-1)的高初始可逆特定容量,具有比碳化的商业纤维素电极更好的循环稳定性。为了设计广泛的锂存储电极,通过静电纺丝制造纤维素衍生的碳纤维/ SnO2复合材料。为了防止活性物质的降解,我们将SnO2纳米颗粒封装在纤维素衍生的碳纤维中,大量的SnO 2(46.4wt%),其均匀地分散在纤维碳基质中。纤维素衍生的碳纤维/ SnO2电极显示出667mAhg(-1)的高可逆容量,并且在200mag(-1)时稳定的循环保留76%超过100次循环,这表示比商业SnO2纳米颗粒更好的循环性能。这些性质反映在纤维素衍生的碳纤维/ SnO2复合电极的优点,例如高反应性,良好的机械性能和源自纤维素的纤维纳米结构的高电导率。

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