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This study presents an acousto-optic tunable filter technology-based echelle-mirror spatial heterodyne Raman spectrometer (AOTF-EMSHRS) that integrates echelle gratings with mirror spatial heterodyne detection. The instrument uses the grating's high resolution and the AOTF's rapid wavelength selection capability to optimize the optical path through a mirror design. This results in a high signal-to-noise ratio (SNR), high spectral resolution, and broad wavelength range measurements. After calibration, the theoretical resolution reached 1.53 cm, with a single-order spectral detection range of 1574.3 cm. The spectral detection range spans from 100 cm to 4397 cm. Experimentally, we detected and analyzed various organic and inorganic substances and solutions. We compared EMSHRS performances with and without the AOTF and found that the SNR of the AOTF-EMSHRS system has improved by at least twofold. Additionally, we measured solutions with different molar concentrations, various sulfate mixtures, and mixtures in transparent containers made from different materials, obtained comprehensive spectral information, and conducted detailed analyses. The AOTF-EMSHRS demonstrated excellent measurement performance during complex sample detection and analysis.
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http://dx.doi.org/10.1364/OE.540128 | DOI Listing |
Sensors (Basel)
August 2025
Key Laboratory for Information Science of Electromagnetic Waves (MoE), School of Information Science and Technology, Fudan University, Shanghai 200433, China.
This work presents an 80 Gbps photonics-aided millimeter-wave (mm Wave) wireless communication system employing 16-Quadrature Amplitude Modulation (16-QAM) and a 1 × 2 single-input multiple-output (SIMO) architecture with maximum ratio combining (MRC) to achieve robust 87.5 GHz transmission over 4.6 km.
View Article and Find Full Text PDFThis study presents an acousto-optic tunable filter technology-based echelle-mirror spatial heterodyne Raman spectrometer (AOTF-EMSHRS) that integrates echelle gratings with mirror spatial heterodyne detection. The instrument uses the grating's high resolution and the AOTF's rapid wavelength selection capability to optimize the optical path through a mirror design. This results in a high signal-to-noise ratio (SNR), high spectral resolution, and broad wavelength range measurements.
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View Article and Find Full Text PDFThis paper presents a tunable spatial heterodyne spectrometer in which the fringe frequency exhibits a strict linear relationship with the wavenumber of incident light. We describe its optical implementation method, precise spectral inversion expression, and performance parameters, with theoretical validity verified through a simulation-based design example. Compared with conventional spatial heterodyne spectroscopy, it offers the same usable field-of-view and spectral resolution, while increasing the spectral range and eliminating the need for nonlinear data processing.
View Article and Find Full Text PDFGround-based Doppler asymmetric spatial heterodyne interferometry retrieves upper atmospheric winds by calculating the phase shift in the interferogram resulting from the Doppler shift of airglow emission lines. However, in practical applications, interferogram distortion, such as fringe bending and tilting, can adversely affect wind accuracy. This paper presents a distortion correction method based on the resampling matrix that can be obtained from an interferogram of airglow lines or a calibration lamp.
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