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Large-scale template-free synthesis of nitrogen-doped 3D carbon frameworks as low-cost ultra-long-life anodes for lithium-ion batteries

机译:氮掺杂3D碳框架的大规模模板合成作为锂离子电池的低成本超长寿命阳极

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摘要

Finding novel anode materials in place of the current commonly used but performance-limited graphite is the top priority for the remarkable development of lithium-ion batteries (LIBs). Although impressive reports have been published, certain problems, such as complicated synthesis processes, limited production, high cost of raw materials, and lack of truly durable and high-capacity performance, are still hindering the actual applications of LIBs. In this work, we report a mass-produced 3D nitrogen-doped carbon framework (NCF) that uses low-cost polyacrylonitrile (PAN) as the precursor. A simple sol-gel method is used to prepare the anode materials for ultra-long life LIBs, through which 24.35 g samples can be easily prepared at the laboratory level. This method also ensures that samples with certain morphologies, crystal structures, and nitrogen of specific contents and species can be prepared by the simple control of the pyrolysis temperature. Benefitting from the unique structure, NCFs-800 exhibits excellent rate performance, with its lithium ion storage capacity maintained as high as 41.4% from 675 mAh g(-1) to 279 mAh g(-1) when the current density increases 100-fold from 0.1 A g(-1) to 10 A g(-1). Furthermore, the electrode of NCFs-800 possesses an ultra-long lifespan of over 10,000 cycles with stable capacity retention exceeding 54%, corresponding to a remarkably slow capacity loss of 0.0046% per cycle. After deep cycling at 10 A g(-1), a relatively high capacity of 124 mAh g(-1) can be retained, which is consistent with the theoretical capacity of cathode materials. Therefore, this kind of material is perfect for industrialization, given the low cost of raw materials, easily scaled up methods, and excellent lithium storage performance.
机译:寻找新颖的阳极材料代替常用但性能限制石墨的电流是锂离子电池(LIBS)显着发展的首要任务。虽然已经发表了令人印象深刻的报告,但某些问题,如复杂的合成过程,有限的生产,原材料成本,以及缺乏真正持久和高容量的性能,仍在阻碍LIBS的实际应用。在这项工作中,我们报告了一种大规模生产的3D氮掺杂碳框架(NCF),其使用低成本的聚丙烯腈(PAN)作为前体。简单的溶胶方法用于制备用于超长寿命库的阳极材料,通过该阳极材料可以在实验室水平容易地制备24.35g样品。该方法还可确保通过简单的热解温的控制来确保具有特定形态,晶体结构和物种的氮的样品。从独特的结构受益,NCFS-800表现出优异的速率性能,当电流密度增加100倍时,其锂离子储存容量保持高达41.4%至279mAhg(-1)从0.1 a g(-1)至10 a g(-1)。此外,NCFS-800的电极具有超过10,000个循环的超长寿命,稳定的容量潴留超过54%,对应于每循环的显着慢容量损失0.0046%。在10Ag(-1)的深度循环后,可以保留相对高的容量124mAhg(-1),这与阴极材料的理论容量一致。因此,这种材料是工业化的完美,鉴于原材料的成本低,易于扩大的方法,以及出色的锂储存性能。

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