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首页> 外文期刊>ACS nano >Scalable high-power redox capacitors with aligned nanoforests of crystalline MnO_2 nanorods by high voltage electrophoretic deposition
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Scalable high-power redox capacitors with aligned nanoforests of crystalline MnO_2 nanorods by high voltage electrophoretic deposition

机译:可扩展的高功率氧化还原电容器,具有通过高压电泳沉积排列的晶体MnO_2纳米棒的纳米树林

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摘要

It is commonly perceived that reduction-oxidation (redox) capacitors have to sacrifice power density to achieve higher energy density than carbon-based electric double layer capacitors. In this work, we report the synergetic advantages of combining the high crystallinity of hydrothermally synthesized α-MnO_2 nanorods with alignment for high performance redox capacitors. Such an approach is enabled by high voltage electrophoretic deposition (HVEPD) technology which can obtain vertically aligned nanoforests with great process versatility. The scalable nanomanufacturing process is demonstrated by roll-printing an aligned forest of α-MnO_2 nanorods on a large flexible substrate (1 inch by 1 foot). The electrodes show very high power density (340 kW/kg at an energy density of 4.7 Wh/kg) and excellent cyclability (over 92% capacitance retention over 2000 cycles). Pretreatment of the substrate and use of a conductive holding layer have also been shown to significantly reduce the contact resistance between the aligned nanoforests and the substrates. High areal specific capacitances of around 8500 μF/cm~2 have been obtained for each electrode with a two-electrode device configuration. Over 93% capacitance retention was observed when the cycling current densities were increased from 0.25 to 10 mA/cm~2, indicating high rate capabilities of the fabricated electrodes and resulting in the very high attainable power density. The high performance of the electrodes is attributed to the crystallographic structure, 1D morphology, aligned orientation, and low contact resistance.
机译:通常认为,氧化还原(redox)电容器必须牺牲功率密度才能获得比碳基双电层电容器更高的能量密度。在这项工作中,我们报告了水热合成的α-MnO_2纳米棒的高结晶度与高性能氧化还原电容器的取向相结合的协同优势。这种方法通过高压电泳沉积(HVEPD)技术得以实现,该技术可以获得具有极大工艺多样性的垂直排列的纳米林。通过在大型柔性基板(1英寸乘1英尺)上滚动印刷对齐的α-MnO_2纳米棒森林,证明了可扩展的纳米制造工艺。电极显示出极高的功率密度(能量密度为4.7 Wh / kg时为340 kW / kg)和出色的循环性(在2000次循环中电容保持率超过92%)。还已经显示了对基板的预处理和使用导电保持层可显着降低对准的纳米林与基板之间的接触电阻。对于具有两电极器件配置的每个电极,已经获得了大约8500μF/ cm〜2的高面积比电容。当循环电流密度从0.25增加到10 mA / cm〜2时,观察到了超过93%的电容保持率,这表明所制造电极的高倍率能力并导致了很高的可达到的功率密度。电极的高性能归因于晶体结构,一维形态,取向取向和低接触电阻。

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