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Ultralong cycle life and outstanding capacitive performance of a 10.8 V metal free microsupercapacitor with highly conducting and robust laser-irradiated graphene for an integrated storage device

机译:Ultralong循环寿命和10.8V金属自由电路的突出电容性能,具有高导电和鲁棒的激光照射石墨烯,用于集成存储装置

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摘要

Interconnected porous graphene plays a crucial role as supercapacitive material as well as a current collector in developing metal free microsupercapacitor (MSC) because of its unique structure and superior conductivity. Electrochemical reduction followed by use of a laser irradiation method shows advances for the fabrication of the conductive graphene-based robust device. Use of Raman spectra proves that the laser irradiation method is capable of healing the defects with fused interconnected sheets, as a result, high conductivity and improved crystallinity of the laser irradiated graphene (LIG) sample is achieved. The LIG film on a flexible substrate was patterned with the aim to develop an on-chip flexible MSC, which offers a large working voltage of 1.2 V in an aqueous solid electrolyte. Interestingly, the MSC, without any metal current collector, shows a unique electrical-double layer behavior and unprecedented cycling stability. It is worth noting that the retention of the initial capacitance after 100 000 continuous cycles was 100%. A large cell voltage of 10.8 V was realized by modularizing the array of devices without much degradation of the rectangular shapes of the voltammogram even at higher scan rates (100 V s(-1)). The array of LIG-MSC was integrated with a commercial solar cell module for hybrid energy harvesting and as a storage device. This study provides an effective strategy to build a metal free supercapacitor with exceptional cycle life and facilitates progress towards self-sustainable energy in the future.
机译:相互连接的多孔石墨烯作为其独特的结构和优异的导电性,作为超级电容材料以及开发金属自由电路(MSC)的集电器。使用激光照射方法的电化学减少显示用于制造导电石墨烯的鲁棒装置的进步。使用拉曼光谱证明激光照射方法能够愈合与熔化的互连片材的缺陷,结果,实现了激光照射石墨烯(Lig)样品的高导电性和改进的结晶度。柔性基板上的Lig膜被图案化,目的是开发片上柔性MSC,其在水性固体电解质中提供1.2V的大工作电压。有趣的是,没有任何金属集电器的MSC,都表示独特的电双层行为和前所未有的循环稳定性。值得注意的是,在100 000连续循环后保持初始电容的保留为100%。通过模块化器件阵列,即使在较高的扫描速率下,通过模块化器件阵列(100V S(-1)),通过模块化器件阵列,实现了10.8V的大电池电压。 Lig-MSC阵列与商业太阳能电池模块集成,用于混合能量收集和作为存储装置。本研究提供了一种有效的策略,为卓越的循环寿命构建金属自由超级电容器,并促进未来自我可持续能源的进展。

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