English

AlGaAs/GeSn p-i-n diode interfaced with ultrathin Al$_2$O$_3$

Applied Physics 2024-08-19 v1 Materials Science

Abstract

This study presents the fabrication and characterizations of an Al0.3_{0.3}Ga0.7_{0.7}As/Ge0.87_{0.87}Sn0.13_{0.13}/GeSn p-i-n double heterostructure (DHS) diode following the grafting approach for enhanced optoelectronic applications. By integrating ultra-thin Al2_2O3_3 as a quantum tunneling layer and enhancing interfacial double-side passivation, we achieved a heterostructure with a substantial 1.186 eV conduction band barrier between AlGaAs and GeSn, along with a low interfacial density of states. The diode demonstrated impressive electrical characteristics with high uniformity, including a mean ideality factor of 1.47 and a mean rectification ratio of 2.95E103 at +/-2 V across 326 devices, indicating high-quality device fabrication. Comprehensive electrical characterizations, including C-V and I-V profiling, affirm the diode's capability to provide robust electrical confinement and efficient carrier injection. These properties make the Al0.3_{0.3}Ga0.7_{0.7}As/Ge0.87_{0.87}Sn0.13_{0.13}/GeSn DHS a promising candidate for next-generation electrically pumped GeSn lasers, potentially operable at higher temperatures. Our results provide a viable pathway for further advancements in various GeSn-based devices.

Keywords

Cite

@article{arxiv.2408.08451,
  title  = {AlGaAs/GeSn p-i-n diode interfaced with ultrathin Al$_2$O$_3$},
  author = {Yang Liu and Yiran Li and Sudip Acharya and Jie Zhou and Jiarui Gong and Alireza Abrand and Yi Lu and Daniel Vincent and Samuel Haessly and Parsian K. Mohseni and Shui-Qing Yu and Zhenqiang Ma},
  journal= {arXiv preprint arXiv:2408.08451},
  year   = {2024}
}

Comments

5 pages, 4 figures