Effect of sensitivity on the performance of dielectric–modulated asymmetrical AlGaN/GaN/InGaN/GaN MOSHEMTs for precise biosensing applications

This paper investigates a simulation based AlGaN/GaN/InGaN/GaN asymmetrical Metal Oxide Semiconductor High Electron Mobility Transistor (MOSHEMT) architecture that detects neutral biomolecules, including Zein, APTES, ChOx, Protein, Glucose, and Uricase. The device uses high-k (Al 2 O 3 ) dielectric material for simulation, offering superior electrical insulation, stable chemical properties, high surface site density (8 × 10 14 /cm²), and reduced Fermi pinning. The influence of the source-to-gate (L SG ) and gate-to-drain (L GD ) lengths on the performance of the proposed architecture is systematically evaluated in the presence of different biomolecules. Additionally, the reduction of short-channel effects, such as punch through and threshold voltage roll-off, improves scalability in advanced technologies. A 3-nm-thick In 0.1 Ga 0.9 N notch layer is incorporated into the proposed device, forming an additional potential barrier between the primary AlGaN/GaN 2DEG channel and the GaN buffer. The polarization-induced conduction-band discontinuity further results in the formation of a shallow secondary potential well at the InGaN/GaN interface, where limited carrier accumulation gives rise to a secondary conduction channel. In conjunction with the primary 2DEG, this dual-channel carrier confinement enhances electron mobility, reduces buffer leakage, and consequently improves the overall biosensing performance. The simulation analysis demonstrates an increase in drain current (I DS ) to 5.026 A/mm and a threshold voltage (V th ) of − 4.466 V for the neutral biomolecule Uricase ( k = 1.5) when L GD = 0.75 μm, compared with L GD = 0.5 μm and L GD = 0.25 μm at V GS = 2 V and V DS = 1 V. Similarly, the transconductance (g m ) and output conductance (g d ) when k = 1.5 in the cavity are 2.4 S/mm and 27mS/mm for L GD = 0.75 μm compared with the different L GD counterparts. The AlGaN/GaN/InGaN/GaN dielectric-modulated MOSHEMTs show excellent sensitivity, making them suitable for advanced biological applications.

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Publication Details

Journal
Micro and Nano Systems Letters
Published
2026-09-28
DOI
https://doi.org/10.1186/s40486-026-00264-6
Primary Topic
GaN-based semiconductor devices and materials
Type
article
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article

Effect of sensitivity on the performance of dielectric–modulated asymmetrical AlGaN/GaN/InGaN/GaN MOSHEMTs for precise biosensing applications

Girish Shankar Mishra, Sanivarapu Prasanth Vaidya, N. Mohankumar, Nitin Rakesh et al.
Micro and Nano Systems Letters
GaN-based semiconductor devices and materials
article

Effect of sensitivity on the performance of dielectric–modulated asymmetrical AlGaN/GaN/InGaN/GaN MOSHEMTs for precise biosensing applications

Girish Shankar Mishra, Sanivarapu Prasanth Vaidya, N. Mohankumar, Nitin Rakesh, R. Meenakshi, Amit Bhattacharyya, Himadri Sekhar Das
article en

Abstract

This paper investigates a simulation based AlGaN/GaN/InGaN/GaN asymmetrical Metal Oxide Semiconductor High Electron Mobility Transistor (MOSHEMT) architecture that detects neutral biomolecules, including Zein, APTES, ChOx, Protein, Glucose, and Uricase. The device uses high-k (Al 2 O 3 ) dielectric material for simulation, offering superior electrical insulation, stable chemical properties, high surface site density (8 × 10 14 /cm²), and reduced Fermi pinning. The influence of the source-to-gate (L SG ) and gate-to-drain (L GD ) lengths on the performance of the proposed architecture is systematically evaluated in the presence of different biomolecules. Additionally, the reduction of short-channel effects, such as punch through and threshold voltage roll-off, improves scalability in advanced technologies. A 3-nm-thick In 0.1 Ga 0.9 N notch layer is incorporated into the proposed device, forming an additional potential barrier between the primary AlGaN/GaN 2DEG channel and the GaN buffer. The polarization-induced conduction-band discontinuity further results in the formation of a shallow secondary potential well at the InGaN/GaN interface, where limited carrier accumulation gives rise to a secondary conduction channel. In conjunction with the primary 2DEG, this dual-channel carrier confinement enhances electron mobility, reduces buffer leakage, and consequently improves the overall biosensing performance. The simulation analysis demonstrates an increase in drain current (I DS ) to 5.026 A/mm and a threshold voltage (V th ) of − 4.466 V for the neutral biomolecule Uricase ( k = 1.5) when L GD = 0.75 μm, compared with L GD = 0.5 μm and L GD = 0.25 μm at V GS = 2 V and V DS = 1 V. Similarly, the transconductance (g m ) and output conductance (g d ) when k = 1.5 in the cavity are 2.4 S/mm and 27mS/mm for L GD = 0.75 μm compared with the different L GD counterparts. The AlGaN/GaN/InGaN/GaN dielectric-modulated MOSHEMTs show excellent sensitivity, making them suitable for advanced biological applications.

Micro and Nano Systems LettersVol. 14(1)
Haldia Institute of Technology (IN), Symbiosis International University (IN), GITAM University (IN)
Openalex Percentile: Top 18%
GaN-based semiconductor devices and materials
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