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首页> 外文期刊>Electrochimica Acta >Enhanced electrochemical performances of mesoporous carbon microsphere/selenium composites by controlling the pore structure and nitrogen doping
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Enhanced electrochemical performances of mesoporous carbon microsphere/selenium composites by controlling the pore structure and nitrogen doping

机译:通过控制孔结构和氮掺杂增强了介孔碳微球/硒复合材料的电化学性能

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摘要

Mesoporous carbon microspheres (MCMs) with tunable pore sizes have been prepared via a high-throughput spray drying-assisted hard template method and used as the hosts to load selenium (Se) for lithium-selenium (Li-Se) batteries. The pore size control of the MCMs (3.8, 5, 6.5, 9.5 nm) was achieved by in-situ polymerized colloid silica templates with different sizes, thus prompting us to focus on tracing the effects of mesopore size on electrochemical performance of MCMs/Se cathodes. The results reveal that relative higher capacity and better cycling performance are presented in MCMs with smaller pores size due to the more effective confinement effect. At an optimal pore size of 3.8 nm, the MCMs/Se with 50% Se loading delivers an initial capacity of 513mAhg(-1) and capacity retention of 300mAhg(-1) after 100 cycles at 0.5 C. Furthermore, it is concluded that nitrogen doping could assist MCMs to retard the diffusion of polyselenide species possibly via an enhanced surface adsorption. The composites thus increase the reversible capacity by 30% after 100 cycles compared with the nitrogen-free composite. These results indicate that controlling pore structure and surface chemistry are good strategies to optimize the electrochemical performance of C/Se based cathodes for Li-Se batteries. (C) 2014 Elsevier Ltd. All rights reserved.
机译:已经通过高通量喷雾干燥辅助硬模板方法制备了具有可调孔径的中孔碳微球(MCM),并将其用作装载锂硒(Li-Se)电池中硒(Se)的主体。通过不同尺寸的原位聚合胶体二氧化硅模板实现了MCM的孔径控制(3.8、5、6.5、9.5 nm),因此促使我们专注于追踪中孔尺寸对MCM / Se电化学性能的影响阴极。结果表明,由于更有效的限制作用,在具有较小孔尺寸的MCM中具有相对较高的容量和更好的循环性能。在3.8 nm的最佳孔径下,Se负载量为50%的MCMs / Se在0.5 C循环100次后提供的初始容量为513mAhg(-1),容量保持率为300mAhg(-1)。氮掺杂可能有助于MCM通过增强表面吸附来阻止聚硒化物物种的扩散。因此,与无氮复合材料相比,复合材料在100次循环后可逆容量增加了30%。这些结果表明,控制孔结构和表面化学性质是优化C / Se基锂-硒电池阴极电化学性能的良好策略。 (C)2014 Elsevier Ltd.保留所有权利。

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