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Graphene-like carbon sheet/Fe3O4 nanocomposites derived from soda papermaking black liquor for high performance lithium ion batteries

机译:碳酸钠/ Fe3O4纳米石墨烯复合材料,由碳酸钠造纸黑液制成,用于高性能锂离子电池

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摘要

Alkali lignins and its degradation products in the soda papermaking black liquor (SPBL) are renewable resource with the highest natural carbon content. In this work we convert SPBL into the high-performance carbon-based nanocomposite anodes. The unique functional groups of lignin biomass induce spontaneous formation of graphene-like carbon sheet (GCS) in-situ doped SiC/S. The lamellar GCS/FeO nanocomposite (GCS/FO-NC) is facilely prepared via one-step in-situ thermo-chemical method at 700 °C, in which donut shaped FeO nanoparticles with superlattices and inner surface are homogeneously embedded in the interlayer of GCS and are also anchored on its surface. The GCS/FO-NC anode exhibits a ultrahigh first discharge specific capacity of 3829 mAh g at 50 mA g in a coin-type Li ion battery, which is more than 4 times the theoretical capacity (924 mAh g) of FeO and 5 times that of the graphene anode (744 mAh. g). Even at a high current density (1000 mA g), it still exhibits a high reversible capacity (750 mAh g) after 1400 discharge/charge cycles. More importantly, the removal efficiency of chemical oxygen demand of SPBL is up to 83.4% during the synthesis process, which reduce its load to environment and synthetic cost of carbon-based nanocomposite anodes.
机译:苏打造纸黑液(SPBL)中的碱木质素及其降解产物是天然碳含量最高的可再生资源。在这项工作中,我们将SPBL转换为高性能的碳基纳米复合阳极。木质素生物质的独特官能团可自发形成原位掺杂SiC / S的类石墨烯碳片(GCS)。层状GCS / FeO纳米复合材料(GCS / FO-NC)是通过一步一步原位热化学方法在700°C下容易地制备的,其中具有超晶格和内表面的甜甜圈状FeO纳米颗粒均匀地嵌入在硅橡胶的夹层中GCS和也固定在其表面上。 GCS / FO-NC阳极在纽扣型锂离子电池中在50mA时具有3829 mAhg的超高首次放电比容量,是FeO的理论容量(924mAh g)的4倍和5倍以上石墨烯阳极(744mAh。g)。即使在高电流密度(1000mA g)下,在1400次放电/充电循环后,它仍然显示出高可逆容量(750mAh g)。更重要的是,在合成过程中,SPBL的化学需氧量去除率高达83.4%,这降低了其对环境的负担,降低了碳基纳米复合阳极的合成成本。

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