Advanced Photonics Nexus, Volume. 4, Issue 3, 036008(2025)
Ultra-rapid broadband mid-infrared spectral tuning and sensing Editors' Pick
Fig. 1. Basic principles. Schematics of (a) difference-frequency generation, (b) spectral focusing, and (c) optical sampling with asynchronous pulses. (d) Modulating the repetition frequency of signal pulses to improve the scan rate. CPLN, chirped-poling lithium niobate;
Fig. 2. Generation of broadband tunable mid-infrared light. (a) Experimental setup. CW, continuous-wave laser; IM, intensity modulator; PPG, picosecond pulse generator; DC-EDFA, double-clad Er-doped fiber amplifier; HNLF, highly nonlinear fiber; PMF, polarization maintaining fiber; YDFA, Yb-doped fiber amplifier; Col, fiber collimator; M, mirror;
Fig. 3. Results of temporal measurements and spectral reconstruction. (a) Pulse trains recorded in the time domain. (b) Enlarged view of the recoded pulses. The pulses separated by 16.5 ns were determined by the pump laser’s repetition frequency. (c) The normalized spectrum reconstructed from a single measurement and its comparison with the reference trace measured by a commercial spectrometer. (d) Signal-to-noise ratio (SNR) versus number of averages.
Fig. 4. Broadband spectral results. The reconstructed spectra of (a) dimethyl sulfoxide (DMSO) and (b) ethanol with 100-fold averaging. (c) Broadband absorption spectrum of flaxseed oil. In panel (c), the black curve is measured by an FTIR at a spectral resolution of
Fig. 5. Spectral tuning at high scan rates. Mid-IR pulse traces are recorded at (a)
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Xiaoshuai Ma, Tianjian Lv, Dongxu Zhu, Zhuoren Wan, Ming Yan, Heping Zeng, "Ultra-rapid broadband mid-infrared spectral tuning and sensing," Adv. Photon. Nexus 4, 036008 (2025)
Category: Research Articles
Received: Mar. 26, 2025
Accepted: Apr. 3, 2025
Published Online: Apr. 27, 2025
The Author Email: Yan Ming (myan@lps.ecnu.edu.cn), Zeng Heping (hpzeng@phy.ecnu.edu.cn)