English

Using Activated Transport in Parallel Nanowires for Energy Harvesting and Hot Spot Cooling

Mesoscale and Nanoscale Physics 2015-05-13 v3

Abstract

We study arrays of parallel doped semiconductor nanowires in a temperature range where the electrons propagate through the nanowires by phonon assisted hops between localized states. By solving the Random Resistor Network problem, we compute the thermopower SS, the electrical conductance GG, and the electronic thermal conductance KeK^e of the device. We investigate how those quantities depend on the position -- which can be tuned with a back gate -- of the nanowire impurity band with respect to the equilibrium electrochemical potential. We show that large power factors can be reached near the band edges, when SS self-averages to large values while GG is small but scales with the number of wires. Calculating the amount of heat exchanged locally between the electrons inside the nanowires and the phonons of the environment, we show that phonons are mainly absorbed near one electrode and emitted near the other when a charge current is driven through the nanowires near their band edges. This phenomenon could be exploited for a field control of the heat exchange between the phonons and the electrons at submicron scales in electronic circuits. It could be also used for cooling hot spots.

Keywords

Cite

@article{arxiv.1407.7020,
  title  = {Using Activated Transport in Parallel Nanowires for Energy Harvesting and Hot Spot Cooling},
  author = {Riccardo Bosisio and Cosimo Gorini and Geneviève Fleury and Jean-Louis Pichard},
  journal= {arXiv preprint arXiv:1407.7020},
  year   = {2015}
}

Comments

12 pages, 8 figures, 4 appendices