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Carbon-Nanotube/$\beta$-Ga$_2$O$_3$ Heterojunction PIN Diodes

Applied Physics 2025-03-31 v1 Materials Science

Abstract

β\beta-Ga2_2O3_3 is gaining attention as a promising semiconductor for next-generation high-power, high-efficiency, and high-temperature electronic devices, thanks to its exceptional material properties. However, challenges such as the lack of viable p-type doping have hindered its full potential, particularly in the development of ambipolar devices. This work introduces a novel heterojunction diode (HD) that combines p-type carbon nanotubes (CNTs) with i/n-type β\beta-Ga2_2O3_3 to overcome these limitations. For the first time, a CNT/β\beta-Ga2_2O3_3 hetero-p-n-junction diode is fabricated. Compared to a traditional Schottky barrier diode (SBD) with the same β\beta-Ga2_2O3_3 epilayer, the CNT/β\beta-Ga2_2O3_3 HD demonstrates significant improvements, including a higher rectifying ratio (1.2×10111.2 \times 10^{11}), a larger turn-on voltage (1.96 V), a drastically reduced leakage current at temperatures up to 300 {\deg}C, and a 26.7% increase in breakdown voltage. Notably, the CNT/β\beta-Ga2_2O3_3 HD exhibits a low ideality factor of 1.02, signifying an ideal interface between the materials. These results underline the potential of CNT/β\beta-Ga2_2O3_3 heterojunctions for electronic applications, offering a promising solution to current limitations in β\beta-Ga2_2O3_3-based devices.

Keywords

Cite

@article{arxiv.2503.22123,
  title  = {Carbon-Nanotube/$\beta$-Ga$_2$O$_3$ Heterojunction PIN Diodes},
  author = {Hunter D. Ellis and Botong Li and Haoyu Xie and Jichao Fan and Imteaz Rahaman and Weilu Gao and Kai Fu},
  journal= {arXiv preprint arXiv:2503.22123},
  year   = {2025}
}

Comments

17 pages, 5 figures