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首页> 外文期刊>ACS applied materials & interfaces >Electrode Design for High-Performance Sodium-Ion Batteries: Coupling Nanorod-Assembled Na3V2(PO4)(3)@C Microspheres with a 3D Conductive Charge Transport Network
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Electrode Design for High-Performance Sodium-Ion Batteries: Coupling Nanorod-Assembled Na3V2(PO4)(3)@C Microspheres with a 3D Conductive Charge Transport Network

机译:高性能钠离子电池的电极设计:耦合纳米棒组装的Na3v2(PO4)(3)带3D导电电荷运输网络的微球

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摘要

As one of the most promising cathodes for sodium-ion batteries, the polyanionic compounds still suffer from unsatisfactory capacity and rate performance resulting from poor electron conductivity. Furthermore, the charge-transfer kinetics, especially for Na+, becomes limiting as the mass loading increases. Herein, a robust free-standing electrode coupling optimal porous orob Na3V2(PO4)(3)@C microspheres with a bicontinuous charge transport network is designed and prepared by a simple casting method. In the design, the optimal porous carbon-coated microspheres, composed of some continuous nanorods, along with interwoven carbon nanofiber networks offer efficient electron transport and facile ion diffusion. Such an elaborate design enables impressive electron/ion conductivity, contributing to remarkable rate performance (116.1 mA h g(-1) at 0.2 C; 96 mA h g(-1) at 30 C) and outstanding cycling stability (90% capacity retention in 500 cycles at 1 C; 80% capacity retention in 5000 cycles at 10 C), which has surpassed other similar Na3V2(PO4)(3)-based free-standing electrodes as reported. More importantly, when mass loading extends to 8 mg cm(-2), an excellent capacity retention of 75% at 10 C can be obtained. The research offers a new avenue into the rational design of porous microspheres electrode with high conductive charge transport network, indicating its superiority in practical applications.
机译:作为钠离子电池最有前途的阴极之一,多变化化合物仍然遭受不令人满意的容量和速率性能,从而造成差的电子电导率。此外,随着质量加载的增加,电荷转移动力学,特别是Na +变得限制。这里,通过简单的铸造方法设计和制备具有双连续电荷输送网络的鲁棒独立电极耦合最佳多孔电极耦合最佳多孔灰醛NA3V2(PO4)(3)。在设计中,由一些连续纳米棒组成的最佳多孔碳涂覆的微球以及交织碳纳米恐怖网络提供有效的电子传输和容易离子扩散。这种精心设计使得令人印象深刻的电子/离子电导率,有助于显着的速率性能(116.1 mA Hg(-1)0.2 c; 96 mA hg(-1),30℃,循环稳定性突出(500%的90%如图1c为1℃的循环;在10℃的5000次循环中保持80%的容量保留,如报道的那样超过了其他类似的NA3V2(PO4)(3)的独立电极。更重要的是,当质量加载延伸至8mg cm(-2)时,可以获得10℃的优异容量保持率为75%。该研究提供了具有高导电电荷运输网络的多孔微球电极的合理设计的新途径,表明其在实际应用中的优越性。

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