Experimental Investigation of Drain Noise in High Electron Mobility Transistors: Thermal and Hot Electron Noise
arXiv:2209.02858 · doi:10.1109/TED.2024.3445889
Abstract
We report the on-wafer characterization of -parameters and microwave noise temperature () of discrete metamorphic InGaAs high electron mobility transistors (mHEMTs) at 40 K and 300 K and over a range of drain-source voltages (). From these data, we extract a small-signal model and the drain (output) noise current power spectral density () at each bias and temperature. This procedure enables to be obtained while accounting for the variation of small-signal model, noise impedance match, and other parameters under the various conditions. We find that the thermal noise associated with the channel conductance can only account for a portion of the measured output noise. Considering the variation of output noise with physical temperature and bias and prior studies of microwave noise in quantum wells, we hypothesize that a hot electron noise source based on real-space transfer of electrons from the channel to the barrier could account for the remaining portion of . We suggest further studies to gain insights into the physical mechanisms. Finally, we calculate that the minimum HEMT noise temperature could be reduced by up to % and % at cryogenic temperature and room temperature, respectively, if the hot electron noise could be suppressed.
7 pages, 5 figures