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首页> 外文期刊>Nanoscale >A MIL-47(V) derived hierarchical lasagna-structured V2O3@C hollow microcuboid as an efficient sulfur host for high-performance lithium-sulfur batteries
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A MIL-47(V) derived hierarchical lasagna-structured V2O3@C hollow microcuboid as an efficient sulfur host for high-performance lithium-sulfur batteries

机译:MIL-47 (V)派生层次lasagna-structured V2O3@C空心microcuboid一个高效的高性能硫主机锂硫电池

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Lithium-sulfur batteries are promising candidates for the next generation of energy storage systems owing to their high energy density, low toxicity and abundant reserves of sulfur. However, sulfur has poor conductivity, large volume change during charge/discharge, and more importantly, the intermediate polysulfide (Li2Sn, 3 <= n <= 8) produced in the cycling process is easily soluble in the electrolyte resulting in the "shuttle effect", which have greatly limited the commercialization of lithium-sulfur batteries. Therefore, it is of great value to develop optimized sulfur cathode materials to improve electrode conductivity, buffer volume change and restrain the diffusion of polysulfide. In this work, we construct a V-MOF (MIL-47) derived V2O3@C hollow microcuboid with a hierarchical lasagna-like structure through hydrothermal synthesis followed by calcination, and employ it as a sulfur host for the first time. The fast anchoring of polysulfide by V2O3 nanoparticles and the high electronic conductivity of the 3D carbon framework can simultaneously inhibit the "shuttle effect" in the charge-discharge process and accelerate the kinetics of the redox process. Moreover, the special lasagna-like structure with appropriate voids generated during calcination not only provides many sites for sulfur loading, but also effectively alleviates the volume expansion problem during the electrochemical reaction. Therefore, the final fabricated sulfur cathode via the melt impregnation method exhibits good cycling stability (62.3% after 1000 cycles at 1C) and rate performance (663 mA h g(-1) at 2C) at a relatively high sulfur loading of 3.7 mg cm(-2).
机译:锂硫电池是有希望的候选人对下一代的能源存储系统由于其能量密度高、低毒性硫和丰富的储备。可怜的电导率,大体积变化在吗充电/放电,更重要的是,中间多硫化合物(Li2Sn 3 < = n < = 8)在循环过程中很容易产生可溶性电解液导致的“航天飞机效应”,这大大限制了锂硫电池的商业化。因此,它是很有价值的发展优化硫改善阴极材料电极电导率、缓冲和体积变化抑制多硫化合物的扩散。工作,我们构造一个V-MOF (MIL-47)V2O3@C空心microcuboid层次通过水热lasagna-like结构合成后煅烧,并使用它作为第一次硫主机。锚定V2O3多硫化合物的纳米颗粒和高电子导电率的3 d可以同时抑制碳框架“航天飞机效应”在充放电过程并加速氧化还原过程的动力学。此外,特殊lasagna-like结构在煅烧生成适当的空隙不仅为硫负荷提供了许多网站,而且有效地减轻体积在电化学扩张问题的反应。阴极通过熔体浸渍方法展品良好的循环稳定性(62.3%后1000周期马速度1 c)和性能(663 h g (1)2 c)在一个相对较高的硫加载3.7毫克厘米(2)。

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