AC transport in carbon-based devices: challenges and perspectives
arXiv:0906.1664 · doi:10.1016/j.crhy.2009.05.003
Abstract
Time-dependent fields are a valuable tool to control fundamental quantum phenomena in highly coherent low dimensional electron systems. Carbon nanotubes and graphene are a promising ground for these studies. Here we offer a brief overview of driven electronic transport in carbon-based materials with the main focus on carbon nanotubes. Recent results predicting control of the current and noise in nanotube based Fabry-Pérot devices are highlighted.
8 pages, 3 figures, article for C. R. Physique, special issue on carbon nanotube electronics
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