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Impact of Microstructure on the Electrochemical Performance of Round-Shaped Pitch-Based Graphite Fibers

机译:微观结构对圆角沥青基石墨纤维电化学性能的影响

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摘要

In this study, three kinds of round-shaped pitch-based graphite fiber with different microstructural features (crystallinity and carbon layer orientation) were fabricated by melt-spinning, preoxidation, carbonization and graphitization. The morphology, crystalline size and carbon layer orientation of carbon fibers from different pitch precursors and spinning rates were characterized through X-ray diffraction, scanning electron microscopy and transmission electron analyses. The correlation of the electrochemical performance and microstructure of graphite fibers as anode materials for lithium-ion batteries was investigated. The results suggest that large-diameter anisotropic graphite fibers (L-AF3000) with a radial texture of the transverse section are more favorable for lithium intercalation storage. The discharge capacity of L-AF3000 is 319.1 mAh∙g at 0.1 (current density). Nevertheless, the capacity drops to 209.9 mAh∙g at a high current density of 1 , and the capacity retention is only 82.2% over 100 cycles at 0.1 . Small-diameter anisotropic graphite fibers (S-AF3000) with a spiral-shaped wrinkle texture of the transverse section possess discharge capacities of 284.1 mAh∙g at 0.1 and 260.2 mAh∙g at a high current density of 1 Meanwhile, the best capacity retention of the fibers is 101.6% over 100 cycles at 0.1 . The results suggest that the disordered carbon layers in S-AF3000 can retain the structural integrity of fibers as anode material for lithium-ion batteries and thus obtain excellent cycle stability. In addition, larger crystalline sizes of fibers correspond to higher discharge capacity, and a smaller diameter is beneficial to the fast insertion and extraction of lithium-ion in fibers.
机译:本研究通过熔融纺丝,预氧化,碳化和石墨化制备了三种具有不同微观结构特征(结晶度和碳层取向)的圆形沥青基石墨纤维。通过X射线衍射,扫描电子显微镜和透射电子分析,表征了不同沥青前驱体和纺丝速率的碳纤维的形态,晶体尺寸和碳层取向。研究了作为锂离子电池负极材料的石墨纤维的电化学性能与微观结构的相关性。结果表明,横截面呈放射状的大直径各向异性石墨纤维(L-AF3000)更有利于锂插层的存储。 L-AF3000在0.1(电流密度)下的放电容量为319.1 mAh∙g。然而,在1的高电流密度下,容量下降至209.9 mAh∙g,并且在0.1的100次循环中,容量保持率仅为82.2%。横截面呈螺旋形皱纹的小直径各向异性石墨纤维(S-AF3000)在0.1 mAh∙g的放电电流下的放电容量为284.1 mAh∙g,在1的高电流密度下的放电容量为260.2 mAh。同时,保持最佳的容量在0.1的100个循环中,纤维的数量为101.6%。结果表明,S-AF3000中无序的碳层可以保留作为锂离子电池负极材料的纤维的结构完整性,从而获得出色的循环稳定性。另外,纤维的较大晶体尺寸对应于较高的放电容量,并且较小的直径有利于锂离子在纤维中的快速插入和提取。

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