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Thermal Moore's law and near-field thermal conductance in carbon-based electronics

机译:碳基电子学中的热摩尔定律和近场热导

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摘要

The novel thermal conductance mechanism, theoretically predicted and experimentally measured in nanotube field-effect transistors (FET), is discussed with respect to the power dissipation problem of modern carbon-based electronics. Such an effect is due to the near-field coupling of the charge carriers in the transistor channel with the local electric field of the surface electromagnetic modes. The coupling leads to a quantum electrodynamic (QED) energy exchange between the hot electrons in FET channel and the optical polar phonon bath being in thermal equilibrium with the substrate. For an example of a NT on silica, this QED coupling mechanism is shown to exceed significantly the interface Kapitza conductance, that is, the classical phonon heat transport. The QED thermal conductance is proposed to play dominant role in the energy dissipation in nanoelectronics with a hetero-interface between the device channel and the polar substrate.
机译:针对现代碳基电子器件的功耗问题,讨论了在纳米管场效应晶体管(FET)中进行理论预测和实验测量的新型导热机制。这种影响是由于晶体管沟道中的电荷载流子与表面电磁模式的局部电场的近场耦合引起的。耦合导致FET通道中的热电子与与基板处于热平衡状态的光学极性声子浴之间的量子电动力学(QED)能量交换。以二氧化硅上的NT为例,该QED耦合机理显示出明显超过了界面Kapitza电导率,即经典的声子传热。提出了QED热导在纳米电子器件的能量耗散中起主要作用,该器件在器件通道和极性基板之间具有异质界面。

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