一维和二维电子学的能源效率和转换

E. Pop, C. English, F. Xiong, Feifei Lian, A. Serov, Zuanyi Li, S. Islam, V. Dorgan
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引用次数: 0

摘要

综述了近年来在能源、纳米材料和纳米电子学交叉领域的研究进展。通过对基于石墨烯和MoS2的二维(2D)器件的仔细高场研究,我们发现了有关其物理性质和能带结构的细节。我们研究了用于低功耗电子器件的石墨烯晶体管和相变存储器(PCM)元件的热电效应。我们发现内置热电效应可以增强低功耗晶体管和存储器,这在纳米长度尺度上尤为明显。我们还研究了基于一维(1D)碳纳米管的复合材料中的热流,并揭示了一维和二维纳米材料中热流的下限(扩散)和上限(弹道)。我们的研究结果表明,通过共同设计几何形状、界面以及选择一维和二维纳米材料,可以实现基本限制和新的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Energy efficiency and conversion in 1D and 2D electronics
We review our recent studies at the intersection of energy, nanomaterials and nanoelectronics. Through careful high-field studies of two-dimensional (2D) devices based on graphene and MoS2, we have uncovered details regarding their physical properties and band structure. We have investigated thermoelectric effects in graphene transistors and phase-change memory (PCM) elements for low-power electronics. We find that low-power transistors and memory could be enhanced by built-in thermoelectric effects which are particularly pronounced at nanometer length scales. We have also examined heat flow in composites based on one-dimensional (1D) carbon nanotubes, and uncovered both the lower (diffusive) and upper (ballistic) limits of heat flow in 1D and 2D nanomaterials. Our results suggest fundamental limits and new applications that could be achieved through the co-design of geometry, interfaces, and selection of 1D and 2D nanomaterials.
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