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Composite Crystalline Aluminum Nitride Passivation for Near-Junction Thermal Management in Gallium Nitride High-Electron-Mobility Transistors.

Created on 19 Sep 2026

Authors

Kexin Deng, Jianbo Wang, Guanjun Jing, Xinhua Wang, Jinlong Du, Sen Huang, Engang Fu, Ke Wei, Bing Sun, Xinguo Gao, Peng Gao, Xinyu Liu

Published in

ACS applied materials & interfaces. Sep 21, 2026. Epub Sep 21, 2026.

Abstract

In this work, we demonstrate a composite crystalline aluminum nitride (AlN) passivation layer for near-junction thermal management in aluminum gallium nitride/gallium nitride (AlGaN/GaN) high-electron-mobility transistors (HEMTs). The 120-nm-thick AlN film consists of an ordered interfacial AlN region together with an upper polycrystalline overlayer. Time-domain thermoreflectance (TDTR) measurements yield an effective cross-plane thermal conductivity of 47.2 W/m·K for the composite AlN, much higher than 2.58 W/m·K for the silicon nitride (SiNx) reference, together with a lower interfacial thermal resistance of 10.0 m2·K/GW compared with 29.6 m2·K/GW for the SiNx-passivated interface. Spatially resolved vibrational electron energy-loss spectroscopy (EELS) further indicates more continuous interfacial vibrational evolution at the AlN/nitride interface. At the device level, steady-state thermoreflectance measurements reveal that the channel-proximal peak temperature is markedly reduced under comparable power densities, accompanied by a more uniform temperature distribution in the gate-to-drain region. In addition to the thermal benefit, the composite AlN layer maintains favorable direct-current (DC) output characteristics relative to the SiNx reference device. These results show that composite crystalline AlN is an effective passivation and near-junction heat-spreading layer for GaN HEMTs.

PMID:
42760063
Bibliographic data and abstract were imported from PubMed on 19 Sep 2026.

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