Device Structural Engineering and Modelling of Emerging III-Nitride/β-Ga2O3 Nano-HEMT for High-Power and THz Electronics

高电子迁移率晶体管 数码产品 材料科学 氮化镓 电力电子 氮化物 纳米- 太赫兹辐射 工程物理 光电子学 功率(物理) 纳米技术 电气工程 晶体管 工程类 物理 复合材料 量子力学 图层(电子) 电压
作者
G. Purna Chandra Rao,Trupti Ranjan Lenka,Valeria Vadalà,Hieu Pham Trung Nguyen
出处
期刊:Physica Scripta [IOP Publishing]
卷期号:99 (12): 125908-125908
标识
DOI:10.1088/1402-4896/ad8991
摘要

Abstract III-nitrides, such as gallium nitride (GaN) and aluminium nitride (AlN), possess a wide bandgap, a high breakdown voltage, and a high thermal conductivity, making them an attractive choice for high frequency and high-power applications. A further benefit of III-nitride-based HEMTs is their high current density, low noise figure, and higher electron mobility, which enable efficient radio-frequency signal amplification. In this research work, the polarization induced graded buffer technique and improved lattice matched β -Ga 2 O 3 substrate is employed to minimize the buffer-related issues in III-Nitride Nano-HEMTs (high electron mobility transistors), such as reduction in the buffer leakage current losses. The polarization-induced doping in buffer region can considerably reduce the buffer leakage current, enhance breakdown voltage and RF characteristics, and bend the conduction band upwardly convex, improving two-dimensional electron gas (2DEG) confinement. A detailed comparison between the graded buffer technique of the HEMT and the HEMT having normal buffer has been conducted. The results demonstrated that the suggested HEMT demonstrated better DC and RF characteristics up to the Tera (10 12 ) hertz range of frequencies. The improved characteristics of the proposed HEMT allow it to be a feasible solution for emerging technologies and cutting-edge communication systems that require efficient signal processing at very high frequencies.

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