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首页> 外文期刊>ACS nano >Surface-Modified Sulfur Nanorods Immobilized on Radially Assembled Open-Porous Graphene Microspheres for Lithium-Sulfur Batteries
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Surface-Modified Sulfur Nanorods Immobilized on Radially Assembled Open-Porous Graphene Microspheres for Lithium-Sulfur Batteries

机译:固定在径向组装的透露型开口石墨烯微球的表面改性的硫纳米棒用于锂 - 硫磺电池

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摘要

The assembly of two-dimensional conductive nanomaterials into hierarchical complex architectures precisely controlling internal open porosity and orientation, external morphology, composition, and interaction is expected to provide promising hosts for high-capacity sulfur cathodes. Herein, we demonstrate rod-like nano sulfur (nS) deposited onto radially oriented open-porous microspherical reduced graphene oxide (rGO) architectures for improved rate and cyclic capabilities of lithium sulfur (Li-S) batteries. The combined chemistry of a spray-frozen assembly and ozonation drives the formation of a radially oriented open-porous structure and an overall microspherical morphology as well as uniform distribution and high loading of rod-like nS. Moreover, an optimum composition and strong bonding of the rGO/nS hybrid enables the optimization of redox kinetics for high sulfur utilization and high-rate capacities. The resulting rGO/nS hybrid provides a specific capacity and first-cycle Coulombic efficiency of 1269.1 mAh g(-1) and 98.5%, respectively, which are much greater than those of ice-templated and physically mixed rGO/nS hybrids and radially oriented open-porous rGO/bulk sulfur with the same hybrid composition. A 4C capacity of 510.3 mAhg(-1) and capacity decay of 0.08% per cycle over 500 cycles (70.9% of the initial capacity over 300 cycles) also support the synergistic effect of the rod-like nS strongly interacting with the radially oriented open-porous rGO microspheres.
机译:预期将二维导电纳米材料组装成二维传感器纳米材料进入分层复杂架构,精确地控制内部开放孔隙率和取向,外部形态,组成和相互作用,为高容量的硫阴极提供有前途的主体。在此,我们示出了沉积在径向取向的开阔的开放式微球体减少的石墨烯氧化物(RGO)架构上的杆状纳米硫(NS),以提高锂硫(LI-S)电池的速率和循环能力。喷雾冷冻组件和臭氧的组合化学驱动径向取向的开阔结构和整体微球体形态的形成以及均匀的分布和高负载的棒状Ns。此外,RGO / NS杂种的最佳组合物和强键合能够优化氧化还原动力学,用于高硫利用率和高速率容量。得到的Rgo / NS杂种分别提供了1269.1mAhg(-1)和98.5%的特定容量和第一周期库仑效率,其远大于冰塑和物理混合的Rgo / NS杂种和径向定向具有相同杂种组合物的开放式Rgo /散装硫。 4C容量为510.3mAhg(-1)和500次循环的容量衰减,超过500周期的0.08%(初始容量超过300次循环的70.9%)也支持与径向定向的开放强烈相互作用的棒状NS的协同效果-porous rgo微球。

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