Understanding the Role of Different Conductive Polymers in Improving the Nanostructured Sulfur Cathode Performance

Weiyang Li, Qianfan Zhang, Guangyuan Zheng, Zhi Wei Seh, Hong‐Bin Yao, Yi Cui

Nano Letters · 2013 · 647 citations · 44 references

TL;DR

Lithium‑sulfur batteries promise high theoretical energy but are limited by polysulfide dissolution, and conductive polymers combined with nanostructured sulfur are promising yet their distinct effects remain poorly understood. This study systematically examines how different conductive polymers affect sulfur cathodes fabricated from polymer‑coated hollow sulfur nanospheres. Polyaniline, polypyrrole, and PEDOT were uniformly coated onto monodisperse hollow sulfur nanospheres via a scalable polymerization process, enabling controlled comparison of coating thickness, chemical bonding, and conductivity through experimental tests and theoretical simulations. The results show that PEDOT provides the greatest improvement in long‑term cycling and high‑rate performance, followed by PPY and PANI, with all three yielding high specific capacities and excellent cycle life.

Abstract

Lithium sulfur batteries have brought significant advancement to the current state-of-art battery technologies because of their high theoretical specific energy, but their wide-scale implementation has been impeded by a series of challenges, especially the dissolution of intermediate polysulfides species into the electrolyte. Conductive polymers in combination with nanostructured sulfur have attracted great interest as promising matrices for the confinement of lithium polysulfides. However, the roles of different conductive polymers on the electrochemical performances of sulfur electrode remain elusive and poorly understood due to the vastly different structural configurations of conductive polymer-sulfur composites employed in previous studies. In this work, we systematically investigate the influence of different conductive polymers on the sulfur cathode based on conductive polymer-coated hollow sulfur nanospheres with high uniformity. Three of the most well-known conductive polymers, polyaniline (PANI), polypyrrole (PPY), and poly(3,4-ethylenedioxythiophene) (PEDOT), were coated, respectively, onto monodisperse hollow sulfur nanopsheres through a facile, versatile, and scalable polymerization process. The sulfur cathodes made from these well-defined sulfur nanoparticles act as ideal platforms to study and compare how coating thickness, chemical bonding, and the conductivity of the polymers affected the sulfur cathode performances from both experimental observations and theoretical simulations. We found that the capability of these three polymers in improving long-term cycling stability and high-rate performance of the sulfur cathode decreased in the order of PEDOT > PPY > PANI. High specific capacities and excellent cycle life were demonstrated for sulfur cathodes made from these conductive polymer-coated hollow sulfur nanospheres.

References

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