DynamicR_ ONdispersion due to buffer traps is a well-known issue of GaN power high electron mobility transistors (HEMTs), critically impacting their performance and stability. Several works show that the dynamicR_ ONreaches a maximum for some OFF-state drain–source voltage (V_DS, OFF) value typically in the range of several hundred volts and then partially recovers to smaller values. In this work, we propose a quantitative explanation for this behavior, attributing it to the charging/discharging dynamics of carbon (C)-related buffer traps. We characterize the dynamicR_ ONin packaged p-GaN gate AlGaN/GaN HEMTs with a custom measurement setup. We find that in these devices, the relativeR_ ONincrease reaches a maximum of 60% forV_DS, OFF ≈ 100–200 V, partially recovering to about 30% asV_DS, OFFis raised to 500 V. We ascribe this behavior to the partial neutralization of C-related acceptor traps in the buffer due to trapping of holes produced by a high-field generation mechanism. This explanation is supported by calibrated 2-D numerical simulations, that successfully reproduce the experimentally observedR_ ONreduction only when including a hole generation mechanism.
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Cioni et al. (2021) studied this question.
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