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首页> 外文期刊>ACS applied materials & interfaces >Deciphering the Structure-Property Relationship of Na-Mn-Co-Mg-O as a Novel High-Capacity Layered-Tunnel Hybrid Cathode and Its Application in Sodium-Ion Capacitors
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Deciphering the Structure-Property Relationship of Na-Mn-Co-Mg-O as a Novel High-Capacity Layered-Tunnel Hybrid Cathode and Its Application in Sodium-Ion Capacitors

机译:将Na-Mn-Co-Mg-O作为新型高容量层隧道混合阴极的结构 - 性能关系及其在钠离子电容器中的应用

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摘要

Developing novel cathode materials with a high energy density and long cycling stability is necessary for Na-ion batteries and Na-ion hybrid capacitors (NICs). Despite their high energy density, structural flexibility, and ease of synthesis, P-type Na layered oxides cannot be utilized in energy-storage applications owing to their severe capacity fading. In this regard, we report a novel composite layered-tunnel Na0.5Mn0.5Co0.48Mg0.02O2 cathode whose binary structure was confirmed via scanning electron microscopy and high-resolution transmission electron microscopy. Combination of the two-dimensional (2D) layered oxides with the three-dimensional tunnel structure, as well as the presence of Mg2+ ions, resulted in a high capacity of 145 mAh g(-1) at a current density of 85 mA g(-1), along with a high stability and rate capability. An NIC was fabricated with composite layered-tunnel structure as a battery-type electrode and commercial activated carbon as a counter electrode. The NIC exhibited a maximum energy density of 35 Wh kg(-1) and good stability retaining 72% of its initial energy density after 3000 cycles. This integrated approach provides a new method for designing high-energy and high-power cathodes for NICs and NIBs.
机译:对于Na离子电池和Na离子混合电容器(NIC),需要开发具有高能量密度和长循环稳定性的新型阴极材料。尽管它们的高能量密度,结构性灵活性和合成的易于易容易性,但由于其严重的容量衰落,不能用于储能应用中的p型Na层状氧化物。在这方面,我们通过扫描电子显微镜和高分辨率透射电子显微镜来报告一种新型复合层状隧道Na0.5mN0.5Co0.48mg0.02O2阴极,其二元结构被证实。二维(2D)分层氧化物与三维隧道结构的组合,以及Mg 2 +离子的存在,在电流密度为85mA g( -1)以及高稳定性和速率能力。用复合层状隧道结构制造NIC作为电池型电极和作为对电极的商业活性炭。 NIC表现出35WH kg(-1)的最大能量密度,并且在3000次循环后保持其初始能量密度的72%的良好稳定性。这种综合方法提供了一种为NIC和NIB设计设计高能和高功率阴极的新方法。

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