High-Power Polarization-Engineered GaN/AlGaN/GaN HEMTs Without Surface Passivation
L. Shen, Robert L. Coffie, D. Buttari, S. Heikman, A. Chakraborty, Alessandro Chini, S. Keller, Steven P. DenBaars, Umesh Kumar Mishra
Abstract
L. Shen, Robert L. Coffie, D. Buttari, S. Heikman, A. Chakraborty, Alessandro Chini, S. Keller, Steven P. DenBaars, Umesh Kumar Mishra
Abstract
In this paper, a high-power GaN/AlGaN/GaN high electron mobility transistor (HEMT) has been demonstrated. A thick cap layer has been used to screen surface states and reduce dispersion. A deep gate recess was used to achieve the desired transconductance. A thin SiO/sub 2/ layer was deposited on the drain side of the gate recess in order to reduce gate leakage current and improve breakdown voltage. No surface passivation layer was used. A breakdown voltage of 90 V was achieved. A record output power density of 12 W/mm with an associated power-added efficiency (PAE) of 40.5% was measured at 10 GHz. These results demonstrate the potential of the technique as a controllable and repeatable solution to decrease dispersion and produce power from GaN-based HEMTs without surface passivation.
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In this paper, a high-power GaN/AlGaN/GaN high electron mobility transistor (HEMT) has been demonstrated. A thick cap layer has been used to screen surface states and reduce dispersion. A deep gate recess was used to achieve the desired transconductance. A thin SiO/sub 2/ layer was deposited on the drain side of the gate recess in order to reduce gate leakage current and improve breakdown voltage. No surface passivation layer was used. A breakdown voltage of 90 V was achieved. A record output power density of 12 W/mm with an associated power-added efficiency (PAE) of 40.5% was measured at 10 GHz. These results demonstrate the potential of the technique as a controllable and repeatable solution to decrease dispersion and produce power from GaN-based HEMTs without surface passivation.
Key concepts: Passivation, Materials science, High-electron-mobility transistor, Transconductance, Optoelectronics, Breakdown voltage, Transistor, Gallium nitride