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首页> 外文期刊>Nanoscale >A facile strategy for the synthesis of three-dimensional heterostructure self-assembled MoSe2 nanosheets and their application as an anode for high-energy lithium-ion hybrid capacitors
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A facile strategy for the synthesis of three-dimensional heterostructure self-assembled MoSe2 nanosheets and their application as an anode for high-energy lithium-ion hybrid capacitors

机译:一个简单的合成策略三维异质结构自组装MoSe2 nanosheets和他们的应用程序阳极为高能锂离子混合电容器

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As energy storage devices, lithium-ion hybrid capacitors (LIHCs) are currently favored by researchers, because they combine the high energy density of lithium-ion batteries and the high power density as well as the long cycle life of electric double-layer capacitors. However, the reason that LIHCs are problematic for researchers and cannot be applied practically is the slow dynamic behavior of the battery type anode that leads to low magnification and cycle performance of the anode, furthermore, causing a dynamic imbalance between the Faraday embedded electrode and the capacitive electrode. Hence, it is imperative to find an anode material that can quickly intercalate/de-intercalate lithium. In this study, a novel anode material, MoSe2 nanoflowers, for LIHCs was incorporated through a facile solvothermal technique. The MoSe2 nanoflowers with a small volume change after Li+ insertion, conducive to a rapid kinetic layered heterostructure, result in extraordinary electrochemical performance. The prepared MoSe2 nanoflowers exhibit very good invertible capacity (641.4 mA h g(-1) at 0.1 A g(-1) after 200 cycles), superior velocity performance (380.3 mA h g(-1) at 5 A g(-1)) and long-term cycling stability (214.6 mA h g(-1) even after 1000 cycles at 1 A g(-1)) as anode materials for LIHCs. Benefiting from the reasonable nanometer size effect, locally fine charge transfers and low energy diffusion barriers, MoSe2 nanoflowers possess high rate pseudocapacitive behavior. In addition, the assembled MoSe2//AC (AC, activated carbon) LIHCs deliver a high energy density (78.75-39.1 W h kg(-1)) and high-power characteristic (150-3600 W kg(-1)). Besides, after 5000 cycles, the capacity retention rate is 70.28% under a broad potential window (0.5-3.5 V). This LIHC based on a transition metal selenide as an anode shows great potential for application in the fields of new energy electric vehicles and smart electronic products.
机译:能源存储设备、锂离子混合电容器(LIHCs)目前青睐的研究人员,因为他们结合高能锂离子电池和高的密度功率密度和长循环寿命电双层电容器。原因LIHCs是研究人员的问题,不能应用几乎是缓慢的电池阳极类型的动态行为导致低放大率和循环性能阳极,此外,导致一个动态法拉第嵌入式电极之间的不平衡和电容电极。必须找到一个阳极材料快速插入/ de-intercalate锂。这项研究中,一种新型阳极材料,MoSe2通过一个nanoflowers, LIHCs成立简单solvothermal技术。李+后nanoflowers小体积变化插入,有利于快速动态分层异质结构,导致非凡的电化学性能。nanoflowers表现出很好的可逆容量马(641.4 h g(1)为0.1 g(1) 200年之后周期),性能优越的速度(380.3 mAh g (1) 5 g(1))和长期骑自行车稳定(214.6 mA h g(1)甚至1000年之后周期1 g(1))作为阳极材料LIHCs。尺寸效应、局部电荷转移和罚款低能量扩散障碍,MoSe2 nanoflowers拥有高速率pseudocapacitive行为。此外,MoSe2 /组装/ AC (AC,激活碳)LIHCs高能量密度(78.75 - -39.1 W h公斤(1))和高功率特征(150 - 3600 W公斤(1))。5000个周期后,容量保持率在一个广泛的潜在的窗口(0.5 - -3.5 70.28%V)。这个LIHC基于过渡金属硒化作为阳极显示潜力巨大应用领域的新能源电力汽车和智能电子产品。

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