...
首页> 外文期刊>Nanoscale >A 3D conductive network of porous carbon nanoparticles interconnected with carbon nanotubes as the sulfur host for long cycle life lithium-sulfur batteries
【24h】

A 3D conductive network of porous carbon nanoparticles interconnected with carbon nanotubes as the sulfur host for long cycle life lithium-sulfur batteries

机译:三维多孔碳的导电网络与碳纳米颗粒相互连接碳纳米管作为硫主机长循环寿命锂硫电池

获取原文
获取原文并翻译 | 示例

摘要

Constructing an interlinked three-dimensional conductive carbon structure as a sulfur host is considered to be an effective strategy for suppressing the capacity decay over long-term cycling and improving the rate performance of lithium-sulfur (Li-S) batteries, because it can not only facilitate rapid electronic and ionic transportation in the cathode, but also be conducive to confine lithium polysulfide (LiPS) dissolution and shuttling. In this report, we designed a novel 3D conductive network structure (CNTs/Co-NC), which is composed of Co-NC (cobalt embedded in an N-doped porous carbon composite) derived from ZIF-67 polyhedra and inserted carbon nanotubes (CNTs), and applied it as a sulfur host for Li-S batteries. The CNT/Co-NC network structure is firstly prepared via the in situ nucleation of small ZIF-67 crystals on the surface of CNTs and eventually grown into CNT/ZIF-67 hybrid materials; after subsequent carbonization and infiltration of sulfur procedures, the S@CNT/Co-NC cathode is obtained. Li-S batteries based on the S@CNT/Co-NC cathode show an improved rate capability of 772.6 mA h g(-1) at the 2 C rate, enhanced long cycling stability under a large current density with a low capacity decay rate of approximate to 0.067 per cycle at the 0.5 C rate after 500 cycles and approximate to 0.072 per cycle at the 1 C rate after 700 cycles and an excellent coulombic efficiency of about 95 up to 500 cycles at 0.5 C and 91 up to 700 cycles at 1 C. The superior performance of S@CNTs/Co-NC should be ascribed to the rapid charge transfer, excellent electron conductivity, improved adsorption capability for LiPSs and enhanced redox kinetics of this 3D conductive network structure.
机译:构建一个相互关联的三维导电碳结构作为硫主机被认为是一种有效的策略在长期抑制能力衰变骑自行车和改善的速度性能锂硫电池(Li-S),因为它可以不仅方便快速的电子和离子交通在阴极,但也是有利于限制多硫化锂(嘴唇)解散和穿梭。小说设计了一个三维导电网络结构(碳纳米管/ Co-NC),它是由Co-NC(钴嵌入在一个n型多孔碳复合)来自zif - 67多面体和插入碳纳米管),应用硫主机Li-S电池。通过原位结构首先准备小zif - 67晶体的成核碳纳米管表面,最终成长为问/ zif - 67混合材料;碳化和硫的渗透程序,S@CNT / Co-NC阴极。基于S@CNT / Co-NC Li-S电池阴极展示一种改进率能力772.6 mA hg (1) 2 C的速度,增强长期骑自行车大电流密度下稳定低容量衰减率近似为0.067%每周期在0.5摄氏度500年后周期和速度近于0.072%周期1 C的速度700年之后周期和一个优秀的库仑效率约95%的500周期在0.5摄氏度和91% 700周期在1 c .上级S@CNTs / Co-NC应该归因于的性能电荷转移迅速,优秀的电子导电率,提高吸附能力嘴唇和增强3 d的氧化还原动力学导电网络结构。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号