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首页> 外文期刊>ACS applied materials & interfaces >Chitosan-Induced Synthesis of Hierarchical Flower Ridge-like MoS2/N-Doped Carbon Composites with Enhanced Lithium Storage
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Chitosan-Induced Synthesis of Hierarchical Flower Ridge-like MoS2/N-Doped Carbon Composites with Enhanced Lithium Storage

机译:壳聚糖诱导具有增强锂储存的分层花脊状MOS2 / N掺杂碳复合材料的合成

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Continuous hierarchical MoS2/C micro/nanostructured composite with strong structural stability and efficient lithium ion and electron transport channels is an urgent need for its successful application in lithium ion battery anode materials. In this study, continuous hierarchical flower ridge-like MoS2/N-doped carbon micro/nanocomposite (MoS2/NC) was first synthesized through a simple chitosan-induced one-pot hydrothermal and postsintering method. The amino containing chitosan is demonstrated to be important not only in nitrogen-doped carbon source, soft template, and surfactant but also in controlling the interlayer distance between adjacent MoS2 layers. The detailed hierarchical structure, phase characteristics, the number of MoS2 stacked layers, and interlayer distance were characterized using a scanning electron microscope, transmission electron microscope, X-ray diffraction, and so forth. It reveals that the interconnected nanoflowers composed of few-layer MoS2 (= 3 layers) nanoflakes with an expanded interlayer distance vertically grow on two-dimensional N-doped carbon nanosheets in the MoS2/NC composite. When examined as anode of lithium ion batteries, this unique hierarchical MoS2/NC micro/nanostructure shows better electrochemical performance. The electrode delivers a reversible capacity of 904.7 mA h g(-1) at 200 mA g(-1) after 100 cycles, outstanding cycle stability at high rates (742, 686, 534 mA h g(-1) at 500, 1000, 2000 mA g(-1) after 400 cycles, respectively) and superior rate performance. The above synthesis strategy is a good choice for constructing other hierarchical transition-metal disulfides or oxides and carbon micro/nanostructures to improve their electrochemical performance.
机译:具有强大结构稳定性和高效锂离子和电子传输通道的连续等级MOS2 / C微/纳米结构复合材料是迫切需要在锂离子电池阳极材料中应用的迫切需要。在该研究中,首先通过简单的壳聚糖诱导的单泡水热和磨牙方法合成连续等级花脊状MOS2 / n掺杂碳微/纳米复合材料(MOS2 / NC)。含壳聚糖的氨基不仅在氮掺杂的碳源,软模板和表面活性剂中重要,而且还表明了控制相邻MOS2层之间的层间距离。使用扫描电子显微镜,透射电子显微镜,X射线衍射等特征详细的分层结构,相位特性,MOS2堆叠层的数量和层间距离。它揭示了由几层MOS2(& 3层)组成的互连纳米辊,其具有膨胀的中间层距离在MOS2 / NC复合材料中的二维N-掺杂碳纳米片上垂直生长。当作为锂离子电池的阳极检查时,这种独特的等级MOS2 / NC微/纳米结构显示出更好的电化学性能。在100个循环后,电极在200mAg(-1)下,在200mA g(-1)下,高速率的出色循环稳定性(742,686,534 mA hg(-1),500,000,2000,电极在200mAg(-1)下提供可逆容量。 MA G(-1)分别在400次循环之后和优越的速率性能。上述合成策略是构建其他分层过渡金属二硫化物或氧化物和碳微/纳米结构以改善其电化学性能的良好选择。

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