We present measurements of the energy relaxation length scale ℓ in two-dimensional electron gases (2DEGs). A temperature gradient is established in the 2DEG by means of a heating current, and then the elevated electron temperature Te is estimated by measuring the resultant thermovoltage signal across a pair of deferentially biased bar-gates. We adapt a model by Rojek and K\"{o}nig [Phys. Rev. B \textbf{90}, 115403 (2014)] to analyse the thermovoltage signal and as a result extract ℓ, Te, and the power-law exponent αi for inelastic scattering events in the 2DEG. We show that in high-mobility 2DEGs, ℓ can attain macroscopic values of several hundred microns, but decreases rapidly as the carrier density n is decreased. Our work demonstrates a versatile low-temperature thermometry scheme, and the results provide important insights into heat transport mechanisms in low-dimensional systems and nanostructures. These insights will be vital for practical design considerations of future nanoelectronic circuits.
@article{arxiv.1504.06524,
title = {Determining energy relaxation length scales in two-dimensional electron gases},
author = {Jordan Billiald and Dirk Backes and Jürgen König and Ian Farrer and David Ritchie and Vijay Narayan},
journal= {arXiv preprint arXiv:1504.06524},
year = {2015}
}
Comments
Version accepted for publication in Appl. Phys. Lett. (2015)