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首页> 外文期刊>Carbon: An International Journal Sponsored by the American Carbon Society >Growth of carbon nanosheets on carbon nanotube arrays for the fabrication of three-dimensional micro-patterned supercapacitors
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Growth of carbon nanosheets on carbon nanotube arrays for the fabrication of three-dimensional micro-patterned supercapacitors

机译:用于制备三维微观图案超级电容器的碳纳米管阵列上的碳纳米柱的生长

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摘要

Micro-supercapacitors provide high peak power, long cycle life, and high charge/discharge rates for practical applications in microsystems. However, current micro-supercapacitors generally suffer from low energy density and complicated fabrication process. Here, we report carbon nanosheet (CN) selectively grown on carbon nanotube (CNT) patterns as three-dimensional hybrid electrodes for high-performance micro-supercapacitor applications. The growth mechanism is revealed that CNs prefers to grow on CNT surface rather than on SiO2 substrate due to the high binding energy of carbon atom absorbed on CNT surface. The symmetric all-carbon CN/CNT micro-supercapacitors exhibit ultrahigh areal capacitance of approximately 110 mF cm(-2) at a current density of 0.3 mA cm(-2), outstanding long-term cyclic stability (approximate to 7% loss of initial capacitance after 10,000 cycles). Furthermore, flexible micro-supercapacitors are achieved by peeling off microelectrodes using H3PO4/PVA electrolyte and showing high functional flexibility (capacitance loss less than 9% after 100-cyclic bending tests). The outstanding electrochemical performance and functional flexibility of present micro-supercapacitors show great potential applications in smart and miniaturized electronic devices. (C) 2019 Elsevier Ltd. All rights reserved.
机译:微型超级电容器为微系统中的实际应用提供高峰功率,长循环寿命和高充电/放电速率。然而,目前的微型超级电容器通常遭受低能量密度和复杂的制造过程。这里,我们报告在碳纳米管(CNT)图案上选择性地生长的碳纳米片(CN)作为用于高性能微型超级电容器应用的三维混合电极。由于CNT表面上吸收的碳原子的高结合能量,CNS在CNT表面而不是SiO 2基板上比在CNT表面上而不是在SiO 2衬底上更喜欢。对称全碳CN / CNT微型超级超超级电容器在电流密度为0.3 mA cm(-2),出色的长期循环稳定性(近似值损失10,000个循环后的初始电容)。此外,通过使用H3PO4 / PVA电解质剥离微电极并显示出高函数柔性(电容损耗小于9%,在100循环弯曲试验后的电容损耗小于9%)来实现柔性微型超级电容器。本微型超级电容器的出色电化学性能和功能灵活性在智能和小型化电子设备中显示出巨大的潜在应用。 (c)2019年elestvier有限公司保留所有权利。

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