首页> 外文期刊>ACS applied materials & interfaces >Hierarchically Porous SnO2 Nanoparticle-Anchored Polypyrrole Nanotubes as a High-Efficient Sulfur/Polysulfide Trap for High-Performance Lithium-Sulfur Batteries
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Hierarchically Porous SnO2 Nanoparticle-Anchored Polypyrrole Nanotubes as a High-Efficient Sulfur/Polysulfide Trap for High-Performance Lithium-Sulfur Batteries

机译:分层多孔SnoO2纳米粒子锚定的聚吡咯纳米管,作为高性能锂硫电池的高效硫/多硫化物陷阱

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Conductive supports could improve the electrical conductivity of the electrode in lithium-sulfur (Li-S) batteries but suffer from the shuttle effect originated from the polysulfide dissolution, while the hydrophilic metal oxides could avoid the shuttle effect but with poor conductivity. Herein, a facile approach was developed to fabricate hierarchically porous tin oxide (SnO2) nanoparticle-anchored tubular polypyrrole (T-PPy) as a sulfur host, in order to integrate the advantages of conductive supports and metal oxides but overcome their shortcomings. In the unique structure, the T-PPy nanotubes acted as a conductive network to not only improve the electrical conductivity of cathodes but also accommodate the volume expansion of the sulfur cathode during cycling as well as relatively confine the polysulfide diffusion, while the SnO2 nanoparticles served as a high-efficient polysulfide trap to mitigate the shuttle effect due to the chemical bond between SnO2 and polysulfides. Moreover, the hierarchically porous structure and therefore large surface area of the proposed S/(T-PPy)@SnO2 cathode were favorable for the accommodation of sulfur and lithium sulfides. Consequently, S/(T-PPY)@SnO2 with 64.7% sulfur mass content exhibited excellent cyclic stability with a decay rate of only 0.05% per cycle along with 500 cycles at 1 C, rate capability of 383.7 mA h/g at 5 C, and Coulombic efficiency above 90%, outstanding among most of the reported PPy-based sulfur cathodes and PPy-based ternary sulfur cathodes.
机译:导电支撑件可以提高锂 - 硫(LI-S)电池中电极的电导率,而是源于源于多硫化物溶解的梭效果,而亲水金属氧化物可以避免梭效果,但导电性差。在此,开发了一种容易方法,以制造作为硫宿主的分层多孔氧化锡(SnO 2)纳米颗粒锚定管状滤吡咯(T-PPY),以集成导电支撑和金属氧化物的优点,而克服了它们的缺点。在独特的结构中,T-PPY纳米管作为导电网络,不仅提高阴极的电导率,而且还适应循环期间的硫阴极的体积膨胀以及相对限制多硫化物扩散,而SNO2纳米颗粒作为一种高效的多硫化物疏水阀,以减轻由于SnO2和多硫化物之间的化学键而产生的梭效果。此外,阶级多孔结构以及所提出的S /(T-PPY)的大表面积@ SnO2阴极是有利于硫和硫化锂的容纳。因此,具有64.7%硫质量含量的S /(T-PPY)@ SnO2具有优异的环状稳定性,衰减速率仅为每循环仅0.05%,500次循环,速率能力为383.7 mA H / g在5℃下并且库仑效率高于90%,大多数报告的基于PPY的硫阴极和基于PPY的三元硫阴极的效率高于90%。

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