GaN/InN HEMT based UV photodetector on SiC with hexagonal boron nitride passivation
Mustafa Kilin, Firat Yasar

TL;DR
This paper introduces a GaN/InN HEMT-based UV photodetector on SiC with hexagonal boron nitride passivation, achieving high sensitivity, low leakage, and stable room-temperature operation through advanced material and structural design.
Contribution
It presents a novel UV photodetector architecture integrating InN channels and h-BN passivation, with numerical validation of leakage suppression and enhanced thermal management.
Findings
Leakage current reduced from 10^{-7} A to 10^{-10} A due to h-BN passivation.
Device achieves photo-to-dark current ratio of approximately 10^6.
Stable UV detection with high sensitivity on SiC substrate.
Abstract
This work presents a novel Gallium nitride (GaN) high-electron-mobility transistor (HEMT) based ultraviolet photodetector architecture integrating advanced material and structural design strategies to enhance detection performance and stability under room-temperature operation. The device is constructed on a high-thermal-conductivity silicon carbide (SiC) substrate and incorporates an n-GaN buffer, an indium nitride (InN) channel layer for improved electron mobility and two-dimensional electron gas (2DEG) confinement, and a dual-passivation scheme combining silicon nitride (SiN) and hexagonal boron nitride (h-BN). A p-GaN layer is embedded between the passivation interfaces to deplete the 2DEG in dark conditions. Lateral nickel (Ni) source and drain electrodes and a recessed gate positioned within the substrate ensure enhanced electric field control and noise suppression. Numerical…
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Taxonomy
TopicsGaN-based semiconductor devices and materials · Ga2O3 and related materials · Photocathodes and Microchannel Plates
