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首页> 外文期刊>Advanced energy materials >Ultrahigh-Energy-Density Flexible Lithium-Metal Full Cells based on Conductive Fibrous Skeletons
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Ultrahigh-Energy-Density Flexible Lithium-Metal Full Cells based on Conductive Fibrous Skeletons

机译:基于导电纤维骨架的超高能量密度柔性锂金属全细胞

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Despite extensive studies on lithium-metal batteries (LMBs) that have garnered considerable attention as a promising high-energy-density system beyond current state-of-the-art lithium-ion batteries, their application to flexible power sources is staggering due to the difficulty in simultaneously achieving electrochemical sustainability and mechanical deformability. To address this issue, herein, a new electrode architecture strategy based on conductive fibrous skeletons (CFS) is proposed. Lithium is impregnated into nickel/copper-deposited conductive poly(ethylene terephthalate) nonwovens via electrochemical plating, resulting in self-standing CFS-Li anodes. The CFS-Li anodes exhibit stable Li plating/stripping cyclability and mechanical deformability. To achieve high-capacity flexible cathodes, over-lithiated layered oxide (OLO) particles are compactly embedded in conductive heteronanomats (fibrous mixtures of multiwalled carbon nanotubes and functional polymer nanofibers). The conductive heteronanomats, as CFS of OLO cathodes, provide bicontinuous electron/ion conduction pathways without heavy metallic current collectors and chelate metal ions dissolved from OLO, thus improving the areal capacity, redox kinetics, and cycling retention. Driven by the attractive characteristics of the CFS-Li anodes and CFS-OLO cathodes, the resulting CFS-LMB full cells provide improvements in the cyclability, rate performance, and more notably, (cell-based) gravimetric/volumetric energy density (506 Wh kg(cell)(-1)/765 Wh L-cell(-1)) along with the exceptional mechanical flexibility.
机译:尽管对锂金属电池(LMBS)进行了广泛的研究,但由于超出了当前最先进的锂离子电池的有前途的高能密度系统,它们对柔性电源的应用是惊人的难以同时实现电化学可持续性和机械变形性。为了解决这个问题,这里,提出了一种基于导电纤维骨架(CFS)的新电极架构策略。锂通过电化学电镀浸渍到镍/铜沉积的导电聚(乙烯对苯二甲酸乙二醇酯)非织造织物中,导致自定位的CFS-Li阳极。 CFS-Li阳极表现出稳定的Li电镀/汽提性和机械变形性。为了实现高容量的柔性阴极,过锂化的分层氧化物(OLO)颗粒紧凑地嵌入导电异酰胺(多壁碳纳米管和功能性聚合物纳米纤维的纤维混合物)中。作为OLO阴极的CFS的导电异胰蛋白,提供非连续电子/离子导通途径,没有重质金属集电器,并从OLO溶解的螯合物金属离子,从而改善了面积容量,氧化还原动力学和循环保留。由CFS-LI阳极和CFS-OLO阴极的有吸引力的特性驱动,所得到的CFS-LMB全细胞在可接触性,速率性能和更特别地提供改善(基于细胞的)重量/体积能密度(506WH KG(细胞)( - 1)/ 765 WH L细胞(-1))以及出色的机械柔性。

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