Photonics Research, Volume. 13, Issue 6, 1497(2025)
Cavity-enhanced infrared quantum dot homojunction arrays
Fig. 1. Characterization of one resonant-cavity-enhanced CQD homojunction photodetector. (a) Schematic structure of the detector is depicted on the left. The upper-right inset displays a cross-sectional scanning electron microscopy (SEM) image of the device, and the bottom-right inset shows a magnified image of the CQD layer. Scale bar: 500 nm. (b) Electric field distribution of the detector. (c) Simulated absorption of CQD layer with different spacer thicknesses. (d) Simulated absorption of CQD layer with different gold contact thicknesses. (e) Simulated absorption of CQD layers with different upper gold thicknesses. (f) Simulated absorption of CQD layer with different CQD thicknesses.
Fig. 2. Resonance-enhanced CQD homojunction device characterization. (a)
Fig. 3. HgTe CQD spectrometer. (a) The detector line array and data processing section, and the schematic diagram of the line array post-processing circuit is shown on the right. (b1) Voltage spectra calculated following Eq. (
Fig. 4. Reconstructed spectrum. (a) Plot of photovoltage as a function of
Fig. 5. Picture of the detector array. (a) 4-inch wafer without drop-casting HgTe CQD. (b) 4-inch wafer after drop-casting HgTe CQD. (c) Line array detector with 256 pixels.
Fig. 7. The
Fig. 9. Simulation of quantum dots with different response wavelengths for devices of the same structure. (a) Simulated absorption of HgTe layers with different spacer thicknesses. (b) Simulated absorption of HgTe layers with different quantum dot thicknesses. (c) Spectral response of devices with and without resonant cavity enhancement.
Fig. 10. Pictures of grating microscope observations. (a) 1 mm/100, (b) 1 mm/300, (c) 1 mm/600.
Fig. 11. Physical picture of the detector array and the grating elements.
Fig. 13. Training datasets comprising photovoltage and spectral eigenvalue. (a) Spectral response of a detector with resonant cavity at different
Fig. 14. Neural network self-learning filter transmittance library with (a) transmittance peaks of about 2.3 μm, (b) transmittance peaks of about 1.7 μm, and (c) transmittance peaks of about 1.9 μm.
Fig. 15. Schematic of the detector line array movement and the data processing section. (a) Schematic of the detector line array movement. (b) Spectral response curve when the line array detector is located at
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Naiquan Yan, Feng Shi, Xiaomeng Xue, Kenan Zhang, Cheng Huo, Menglu Chen, "Cavity-enhanced infrared quantum dot homojunction arrays," Photonics Res. 13, 1497 (2025)
Category: Spectroscopy
Received: Dec. 12, 2024
Accepted: Mar. 10, 2025
Published Online: May. 26, 2025
The Author Email: Menglu Chen (menglu@bit.edu.cn)
CSTR:32188.14.PRJ.546383