Construction of a fully transparent <b>β</b>-Ga<sub>2</sub>O<sub>3</sub> multi-mode solar-blind detection experimental system based on back incidence technology

作者
DONG Dianmeng,WANG Jingchen,Chenglong Xu,Min Peng,WANG Zechuan,Cheng Wang,WU Zhenping
出处
期刊:Chinese Physics [Acta Physica Sinica, Chinese Physical Society and Institute of Physics, Chinese Academy of Sciences]
卷期号:74 (22): 225203-225203
标识
DOI:10.7498/aps.74.20251009
摘要

To meet the urgent demand for high-performance photodetectors in emerging solar-blind ultraviolet communication applications, this study systematically designs and implements a fully transparent β-Ga<sub>2</sub>O<sub>3</sub> solar-blind photodetector based on a back-illumination architecture. The device is fabricated using RF magnetron sputtering to epitaxially grow high-quality β-Ga<sub>2</sub>O<sub>3</sub> films (~300 nm in thickness, ~4.98±0.05 eV in bandgap) on double-polished sapphire substrates, with indium tin oxide (ITO) interdigitated electrodes forming efficient quasi-Ohmic contacts with n-type Ga<sub>2</sub>O<sub>3</sub>. The core advantage of this design lies in exploiting the high deep-UV transmittance of double-polished sapphire substrates, enabling incident photons to completely bypass the UV-absorbing ITO electrodes and eliminate photon loss caused by electrode shadowing effects in traditional front-illumination configurations. Consequently, the device demonstrates exceptional optoelectronic performance: a maximum responsivity of 0.46 A/W corresponding to an external quantum efficiency of 222.4%, an outstanding UV/visible rejection ratio of 1.2×10<sup>4</sup>, a minimum noise equivalent power of 1.52 pW/Hz<sup>1/2</sup>, and a peak specific detectivity of 1.39×10<sup>11</sup> Jones, with fast response times of 24 μs (rise) and 1.24 ms (decay). Building on this high-performance detector platform, we further explore its multifunctional application potential by constructing a polarization detection system that utilizes the intrinsic lattice anisotropy of monoclinic β-Ga<sub>2</sub>O<sub>3</sub>, and successfully demonstrating a non-line-of-sight (NLOS) UV communication system that validates high-fidelity information transmission in complex scattering channels. This work provides effective physical insights and experimental basis for developing next-generation Ga<sub>2</sub>O<sub>3</sub>-based optoelectronic devices with integrated high sensitivity, polarization resolution, and NLOS communication capabilities, showing promising applications in secure communications and polarization imaging.

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