首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >High energy density of all-screen-printable solid-state microsupercapacitors integrated by graphene/CNTs as hierarchical electrodes
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High energy density of all-screen-printable solid-state microsupercapacitors integrated by graphene/CNTs as hierarchical electrodes

机译:由石墨烯/ CNT集成的全丝印固态微型电路管的高能量密度作为层级电极

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摘要

Microsupercapacitors (MSCs) are alternative power sources that have the potential to fulfill the increasing demand for wearable and on-chip electronics as they are small and lightweight, and show extremely high charge-discharge rates and power densities, and have high flexibility. However, the critical challenge of recent MSCs is the limitation of low energy density and complicated fabrication processes that are high cost and time-consuming. Here, we reported an all-screen-printable method for fabricating all-solid (including electrolytes) and flexible MSCs by rationally designed composite electrodes with electrochemically exfoliated graphene (ECG) and long single-walled carbon nanotubes (CNTs). This method demonstrated to be a facile and scalable route to fabricate and assemble MSCs in a cost-effective manner and with high throughput. As a result, the resulting MSC devices exhibit an areal capacitance of 7.7 mF cm(-2) and volumetric capacitance of 77.3 F cm(-3), with an excellent cyclic stability of >99% after 15000 cycles; this can be attributed to the creation of a high diffusion path and the promotion of ion transport capability. The cell exhibits energy and power densities of 10.7 mW h cm(-3) and 3.17 W cm(-3), respectively. Moreover, there was negligible degradation in capacitance when subjected to bending deformation with radius reduced to 0.5 mm, indicating excellent mechanical flexibility and operation stability. Further, the output voltage and current can be rationally designed by multiple connections of MSC devices in series and parallel to fulfill the demands of various applications. This study provides a scalable and cost-effective method to produce solid-state MSCs with high energy density, which paves the way for their applications in potential wearable devices.
机译:Microsupapacitors(MSCs)是替代电源,具有潜力,可以满足可穿戴和片上电子产品的不断增加,因为它们小而轻巧,并且显示出极高的充放电速率和功率密度,并具有很高的灵活性。然而,近期MSCs的临界挑战是低能量密度和复杂的制造过程的限制,这是高成本和耗时的。在这里,我们报道了一种用于制造全固体(包括电解质)和柔性MSCs的全屏幕可打印方法,其具有具有电化学剥离的石墨烯(ECG)和长单壁碳纳米管(CNT)的合理设计的复合电极。该方法证明是以经济有效的方式和高吞吐量制造和组装MSC的容易和可扩展的路由。结果,所得MSC器件具有7.7mF cm(-2)的面积电容,77.3f cm(-3)的体积电容,在15000次循环后的优异环状稳定性> 99%;这可以归因于创建高扩散路径和促进离子传输能力。该电池的能量和功率密度分别显示为10.7mW H厘米(-3)和3.17W cm(-3)。此外,当经受半径减小至0.5mm的弯曲变形时,电容中的劣化可忽略不计,表明优异的机械柔性和操作稳定性。此外,输出电压和电流可以通过串联的MSC器件的多个连接来合理设计,并并行以满足各种应用的需求。本研究提供了一种可扩展且经济高效的方法,可以生产具有高能量密度的固态MSC,这为其在潜在可穿戴设备中的应用铺平了道路。

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