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通过调整分级氧/氮功能化碳主体材料的多硫化物吸附效率来提高锂硫电池的性能。

Improving the capacity of lithium-sulfur batteries by tailoring the polysulfide adsorption efficiency of hierarchical oxygen/nitrogen-functionalized carbon host materials.

作者信息

Schneider Artur, Janek Jürgen, Brezesinski Torsten

机构信息

Battery and Electrochemistry Laboratory, Institute of Nanotechnology, Karlsruhe Institute of Technology, Hermann-von-Helmholtz-Platz 1, 76344 Eggenstein-Leopoldshafen, Germany.

出版信息

Phys Chem Chem Phys. 2017 Mar 22;19(12):8349-8355. doi: 10.1039/c6cp08865a.

Abstract

The use of monolithic carbons with structural hierarchy and varying amounts of nitrogen and oxygen functionalities as sulfur host materials in high-loading lithium-sulfur cells is reported. The primary focus is on the strength of the polysulfide/carbon interaction with the goal of assessing the effect of (surface) dopant concentration on cathode performance. The adsorption capacity - which is a measure of the interaction strength between the intermediate lithium polysulfide species and the carbon - was found to scale almost linearly with the nitrogen level. Likewise, the discharge capacity of lithium-sulfur cells increased linearly. This positive correlation can be explained by the favorable effect of nitrogen on both the chemical and electronic properties of the carbon host. The incorporation of additional oxygen-containing surface groups into highly nitrogen-functionalized carbon helped to further enhance the polysulfide adsorption efficiency, and therefore the reversible cell capacity. Overall, the areal capacity could be increased by almost 70% to around 3 mA h cm. We believe that the design parameters described here provide a blueprint for future carbon-based nanocomposites for high-performance lithium-sulfur cells.

摘要

报道了在高负载锂硫电池中使用具有结构层次以及不同数量氮和氧官能团的整体碳作为硫主体材料。主要关注点在于多硫化物/碳相互作用的强度,目的是评估(表面)掺杂剂浓度对阴极性能的影响。吸附容量——它衡量中间锂多硫化物物种与碳之间的相互作用强度——被发现几乎与氮含量呈线性关系。同样,锂硫电池的放电容量也呈线性增加。这种正相关关系可以通过氮对碳主体的化学和电子性质的有利影响来解释。将额外的含氧表面基团引入高度氮官能化的碳中有助于进一步提高多硫化物吸附效率,从而提高可逆电池容量。总体而言,面积容量可提高近70%,达到约3 mA h cm。我们认为,这里描述的设计参数为未来用于高性能锂硫电池的碳基纳米复合材料提供了蓝图。

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