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Carbon-Based Electrode Materials for Microsupercapacitors in Self-Powering Sensor Networks: Present and Future Development

机译:自供电传感器网络中用于超级电容器的碳基电极材料:现在和将来的发展

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摘要

There is an urgent need to fulfill future energy demands for micro and nanoelectronics. This work outlines a number of important design features for carbon-based microsupercapacitors, which enhance both their performance and integration potential and are critical for complimentary metal oxide semiconductor (CMOS) compatibility. Based on these design features, we present CMOS-compatible, graphene-based microsupercapacitors that can be integrated at the back end of the line of the integrated circuit fabrication. Electrode materials and their interfaces play a crucial role for the device characteristics. As such, different carbon-based materials are discussed and the importance of careful design of current collector/electrode interfaces is emphasized. Electrode adhesion is an important factor to improve device performance and uniformity. Additionally, doping of the electrodes can greatly improve the energy density of the devices. As microsupercapacitors are engineered for targeted applications, device scaling is critically important, and we present the first steps toward general scaling trends. Last, we outline a potential future integration scheme for a complete microsystem on a chip, containing sensors, logic, power generation, power management, and power storage. Such a system would be self-powering.
机译:迫切需要满足未来对微电子和纳米电子的能源需求。这项工作概述了碳基微型超级电容器的许多重要设计特征,这些特征可以增强其性能和集成潜力,并且对互补金属氧化物半导体(CMOS)兼容性至关重要。基于这些设计特征,我们提出了CMOS兼容的基于石墨烯的微型超级电容器,这些电容器可以集成在集成电路制造线的后端。电极材料及其界面对于设备特性起着至关重要的作用。因此,讨论了不同的碳基材料,并强调了精心设计集电器/电极界面的重要性。电极附着力是提高器件性能和均匀性的重要因素。另外,电极的掺杂可以大大提高器件的能量密度。由于微型超级电容器是针对目标应用而设计的,因此器件的缩放至关重要,我们介绍了朝着总体缩放趋势发展的第一步。最后,我们概述了一个完整的芯片上微系统的未来集成方案,该方案包含传感器,逻辑,发电,电源管理和电源存储。这样的系统将是自供电的。

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