论文标题
石墨烯气瓶墨水用于微型摄影师的喷墨印刷
Graphene Aerogel Ink for the Inkjet Printing of the Micro-Supercapacitors
论文作者
论文摘要
通过喷墨打印的微观储能设备的大规模制造的进步取决于高质量的可打印墨水的开发。地球含量的无毒碳材料,例如石墨烯,碳纳米管(CNT),氧化石墨烯(R-GO)的减少,表现出卓越的电化学性能,因此作为合适的电极材料引起了巨大的兴趣。在这里,我们报告了可打印石墨烯气凝胶墨水的配方和通过喷墨打印方法在柔性聚酰亚胺基板上制造的微型摄影剂(μ-SCS)。使用原始石墨烯气凝胶的优点打算避免复杂的处理步骤和墨水配方中有毒化学物质的使用,并降低其他添加剂的浓度。因此,可以实现可打印墨水中的活动功能材料的更高负载。直接使用的气瓶墨水通过喷墨打印在室温下在柔性聚酰亚胺基板上写入互换的μ-SCS设备。电化学性能使用有机离子液体在0-1伏的电压范围内测量。这些印刷的μ-SC在6微型AMP/CM2的电流密度下显示出55μF/cm2的面积。印刷设备显示出良好的稳定性,在10,000个周期后约80%的容量保留率。与基于石墨烯的μ-SC相反,气凝胶微型摄影剂即使以〜2VS-1的非常高的扫描速率也显示出CV扫描的显着失真。因此,我们将石墨烯气凝胶作为有希望的电极材料,用于生产μ-SCS。
The advances in the mass scale manufacturing of microscale energy storage devices via inkjet printing rely on the development of high-quality printable ink. The earth-abundant, non-toxic carbon materials such as graphene, carbon nanotube (CNT), reduced graphene oxide (r-GO) have shown excellent electrochemical performance and thus garnered significant interest as suitable electrode material. Here we report the formulation of printable graphene aerogel ink and the fabrication of the micro-supercapacitors (μ-SCs) on flexible polyimide substrates via inkjet printing method. The advantage of using pristine graphene aerogel intends to avoid the complex processing steps and the use of toxic chemicals in the ink formulation and lower the concentration of other additive components. Thus, a higher loading of active functional material in the printable ink is achieved. The aerogel ink directly employed to write the interdigitated μ-SCs devices on a flexible polyimide substrate at room temperature via inkjet printing. The electrochemical performance measured using the organic ionic liquid in the voltage range of 0-1 volt. These printed μ-SCs showed an areal capacity of 55 μF/cm2 at a current density of 6 micro-amp/cm2. The printed devices showed good stability, with ~80% of capacity retention after 10,000 cycles. Contrary to the graphene-based μ-SCs, the aerogel micro-supercapacitors do not show a significant distortion in the CV scan even at a very high scan rate of ~2Vs-1. Thus, we propose graphene aerogel as promising electrode material for mass-scale production of the μ-SCs.