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Carbon nanotubes based on-chip supercapacitors with improved areal energy density

机译:具有改善的面能量密度的基于碳纳米管的片上超级电容器

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Supercapacitors or electrochemical capacitors, as a kind of energy storage devices, have been intensively studied for decades as its combination of high energy density and high power density with long cycle life. The integration of on-chip supercapacitors with Si-compatible processes will further expand their application in electronic systems. Among them, porous carbon materials are quite promising, because the porous carbon owns high surface area with optimised porosity, high electrical conductivity and good electrochemical stability. It was previously reported by our group that high surface area Si-grass withcarbon nanotubes (CNTs) deposition via atmospheric pressure chemical vapor deposition (APCVD) could exhibit high areal energy density for supercapacitor application. In this paper, further improvement in areal energy density is achieved by solution-based catalyst loading into the CNTs network and subsequent CNTs growth via APCVD method in the tube furnace. The mass loading of carbon active materials are enhanced as compact integration of two dense CNT layers to achieve the high areal capacitance 159 mF/cm2 at 5 mV/s with 62 mF/cm2 increasing from one CNT layer, and the main electricity storage mechanism is still electrochemical double layer (ECDL) with the rectangle structure showed in the cyclic voltammetry (CV) curves, which shows these supercapacitors remain the high power properties. These findings demonstrated that CNT based supercapacitors are still competitive in areal energy density with improved mass loading.
机译:超级电容器或电化学电容器作为一种储能设备,由于其高能量密度和高功率密度以及长循环寿命的组合,已经进行了数十年的深入研究。片上超级电容器与Si兼容工艺的集成将进一步扩展其在电子系统中的应用。其中,多孔碳材料是很有前途的,因为多孔碳具有高的表面积,优化的孔隙率,高的电导率和良好的电化学稳定性。我们的小组先前曾报道过,通过大气压化学气相沉积(APCVD)沉积具有碳纳米管(CNTs)的高表面积Si-grass可以展现出超级电容器应用中的高面能量密度。在本文中,通过将溶液基催化剂加载到CNTs网络中以及随后在管式炉中通过APCVD方法生长CNTs,可以进一步提高面能量密度。由于两个致密的CNT层的紧密集成,碳活性材料的质量负荷得以提高,从而实现了159 mF / cm的高面积电容 2 在5 mV / s和62 mF / cm下 2 从一个碳纳米管层开始增加,并且主要的储电机理仍然是电化学双层(ECDL),其在循环伏安法(CV)曲线中显示出矩形结构,这表明这些超级电容器保持了高功率性能。这些发现表明,基于CNT的超级电容器在面积能量密度上仍具有竞争力,并具有改善的质量负载。

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