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首页> 外文期刊>Electrochimica Acta >Synthesis of hierarchical porous honeycomb carbon for lithium-sulfur battery cathode with high rate capability and long cycling stability
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Synthesis of hierarchical porous honeycomb carbon for lithium-sulfur battery cathode with high rate capability and long cycling stability

机译:具有高倍率性能和长循环稳定性的锂硫电池正极多孔多孔碳的合成

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摘要

Sulfur has a high specific capacity of 1675 mAh g~(-1) as lithium battery cathode, but its rapid capacity fading due to polysulfides dissolution presents a significant challenge for practical applications. Here we report a novel hierarchical porous honeycomb carbon (HPHC) for lithium-sulfur battery cathode with effective trapping of polysulfides. The HPHC was prepared by a simple template process, and a sulfur-carbon composite based on HPHC was synthesized for lithium-sulfur batteries by a melt-diffusion method. It is found that the elemental sulfur was dispersed inside the three-dimensionally hierarchical pores of HPHC based on the analyses. Electrochemical tests reveal that the sulfur-HPHC composite shows high rate capability and long cycling stability as cathode materials. The sulfur-HPHC composite with sulfur content of 66.3 wt% displays an initial discharge capacity of 923 mAh g~(-1) and a reversible discharge capacity of 564 mAh g~(-1) after 100 cycles at 2C charge-discharge rate. In particular, the sulfur-HPHC composite presents a long term cycling stability up to 300 cycles at 1.5 C. The results illustrate that the electrochemical reaction constrained inside the interconnected macro/meso/micropores of HPHC would be the dominant factor for the excellent high rate capability and long cycling stability of the sulfur cathode, and the three-dimensionally honeycomb carbon network would be a promising carbon matrix structure for lithium-sulfur battery cathode.
机译:硫作为锂电池正极具有1675 mAh g〜(-1)的高比容量,但由于多硫化物溶解而使其快速容量衰减对实际应用提出了重大挑战。在这里,我们报告了一种新型的锂-硫电池正极新型分层多孔蜂窝碳(HPHC),可有效捕获多硫化物。通过简单的模板工艺制备HPHC,并通过熔融扩散法合成了基于HPHC的硫碳复合材料用于锂硫电池。根据分析发现,元素硫分散在HPHC的三维层次孔中。电化学测试表明,硫-HPHC复合材料作为正极材料显示出高倍率能力和长循环稳定性。硫含量为66.3 wt%的硫-HPHC复合材料在2C充放电速率下经过100次循环后的初始放电容量为923 mAh g〜(-1),可逆放电容量为564 mAh g〜(-1)。尤其是,硫-HPHC复合材料在1.5 C下具有300次循环的长期循环稳定性。结果表明,约束在HPHC的相互连接的大/中/微孔内部的电化学反应将是获得优异高速率的主要因素。硫阴极的高容量和长循环稳定性,以及三维蜂窝状碳网络将成为锂硫电池阴极的有前途的碳基质结构。

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