Cheng Wang, Chuang Wang, Gengyou Zhao, 等. Recent Research Advances and Challenges in Diamond Electronic Devices[J]. Functional Diamond, 2026,6(1).
Cheng Wang, Chuang Wang, Gengyou Zhao, et al. Recent Research Advances and Challenges in Diamond Electronic Devices[J]. Functional Diamond, 2026, 6(1).
Cheng Wang, Chuang Wang, Gengyou Zhao, 等. Recent Research Advances and Challenges in Diamond Electronic Devices[J]. Functional Diamond, 2026,6(1).DOI: 10.1080/26941112.2026.2718535.
Cheng Wang, Chuang Wang, Gengyou Zhao, et al. Recent Research Advances and Challenges in Diamond Electronic Devices[J]. Functional Diamond, 2026, 6(1).DOI: 10.1080/26941112.2026.2718535.
Recent Research Advances and Challenges in Diamond Electronic Devices
摘要
Abstract
Diamond possesses excellent physical and electronic properties
and demonstrates great application potential in the next-generation high-power and high-frequency power electronic devices. In recent years
significant progress has been made in the research on diamond diodes and field-effect transistors (FETs). This paper summarizes the effects of channel types
gate dielectrics
substrate types and device structures on the performance of diamond FETs and diodes. The hydrogen-terminated surface provides a high-performance channel for FETs through the formation of a two-dimensional hole gas
while Al
2
O
3
and h-BN and other gate dielectric materials play a key role in reducing interface state density and improving the high-temperature stability of the devices. The development of high-quality 2-inch sapphire heteroepitaxial diamond substrates effectively alleviated the problem of size limitations of diamond substrates
providing a feasible solution for the fabrication of large-area and low-cost diamond devices. The article analyzes the factors that affect the core performance of diamond devices
including breakdown voltage
on-resistance
current density and threshold voltage. The field plate structure can alleviate the edge electric field concentration effect of the Schottky metal
effectively increase the breakdown voltage of the diamond Schottky diode
and does not sacrifice its forward characteristics. We discuss the
main bottlenecks and challenges that currently restrict the development of diamond devices. We propose effective strategies to enhance the overall performance of diamond electronic devices from perspectives such as material growth
interface engineering
and structural design. This article aims to provide scientific references for the design and development of high-performance diamond electronic devices.
关键词
Keywords
references
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