首页> 外文期刊>Journal of Colloid and Interface Science >Tailored multifunctional hybrid cathode substrate configured with carbon nanotube-modified polar Co(PO3)(2)/CoP nanoparticles embedded nitrogen-doped porous-shell carbon polyhedron for high-performance lithium-sulfur batteries
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Tailored multifunctional hybrid cathode substrate configured with carbon nanotube-modified polar Co(PO3)(2)/CoP nanoparticles embedded nitrogen-doped porous-shell carbon polyhedron for high-performance lithium-sulfur batteries

机译:定制的多功能混合阴极基板配置有碳纳米管改性极性CO(PO3)/ COP纳米颗粒包埋的氮掺杂多孔 - 壳碳多合体,适用于高性能锂 - 硫磺电池

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Despite the overwhelming advantages of high theoretical specific energy and low-cost, the realistic application of lithium-sulfur batteries is still restricted by the shuttle effect of intermediate polysulfides, low conductivity of sulfur and volume variation during charging and discharging. Tailored sulfur cathode is of significant importance for realizing high-performances. This study reports a carbon nanotube (CN)-modified polar Co(PO3)(2)/CoP nanoparticles embedded nitrogen-doped porous-shell carbon polyhedron (CNT/CPO/CPNC-1) as a sulfur host to simultaneously overcome the barriers of lithium-sulfur batteries. The shuttle effect can be significantly restrained by the physical confinement of unique porous structure and the chemical adsorption/catalysis conversion of polar Co(PO3)(2)/CoP and the heteroatom doping of nitrogen. Meanwhile, the porous-shell carbon with interconnected carbon nanotubes can simultaneously provide a conductive framework, facilitate rapid electrical transport, and enable a large inner space to buffer volume expansion. As a result, CNT/CPO/CPNC-1/S cathode demonstrates an excellent reversible capacity of 1371.3 mAh g(-1) at 0.1 C with stable Coulombic efficiency of 98% and an outstanding cycling stability with an ultralow capacity decay rate of 0.048% per cycle (500 cycles at 1.0 C). This work pioneers the employment of Co(PO3)(2)/CoP/carbon hybrid materials as sulfur host and sheds a new light to explore the high-performance lithium-sulfur batteries. (C) 2020 Elsevier Inc. All rights reserved.
机译:尽管高层理论能源和低成本具有压倒性优势,但锂 - 硫电池的现实应用仍然受到中间多硫化物的梭效应,硫导电性和充电和放电期间的体积变化的梭效应。定制硫阴极对于实现高性能具有重要意义。本研究报告了碳纳米管(CN) - 制定极性CO(PO3)(2)/ Cop纳米颗粒包覆氮掺杂多孔 - 壳碳多合体(CNT / CPO / CPNC-1)作为硫磺宿主,以同时克服屏障锂硫磺电池。通过独特的多孔结构的物理禁闭和极性CO(PO3)/ COP和氮杂原子掺杂的化学吸附/催化转化,可以显着抑制梭效果。同时,具有互连碳纳米管的多孔壳碳可以同时提供导电框架,便于快速电气运输,并使大型内部空间能够缓冲体积膨胀。结果,CNT / CPO / CPNC-1 / S阴极以0.1℃的优异可逆容量显示为0.1℃,稳定的库仑效率为98%,超出循环稳定性,超级容量衰减率为0.048 %循环%(1.0℃下的500个循环)。这项工作开创了CO(PO3)/ COP /碳混合材料的就业,作为硫磺主体,并揭示了一种新的光线来探索高性能锂 - 硫磺电池。 (c)2020 Elsevier Inc.保留所有权利。

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