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Jakub Mnich

Publications and source records attributed to Jakub Mnich.

5 recordsLinked to original sources

Incoherent Fourier transform spectroscopy with room-temperature coverage from NIR to THz

Despite the broadband nature of thermal light sources, optical spectroscopy over multiple spectral bands simultaneously remains challenging. Here, we demonstrate a practical Fourier transform infrared spectrometer (FTIR) that achieves room-temperature spectral coverage from 1 to 50 $μ$m (300--6 THz) in seconds using a single set of optics, with the long wave cutoff extendable to 90 $μ$m (3.3 THz) and the short wave to the ultraviolet (0.39 $μ$m). The interferometer employs a diamond plate beam splitter and windowless lithium tantalate (LTO) detector to probe the spectrum of combined incoherent sources operating at different temperatures. Applications of the instrument in modern chemometry, material science, and medicine are envisioned.

physics.optics

Infrared photonics for healthcare: A roadmap for proactive and predictive health management

The field of infrared (IR) photonics is currently undergoing remarkable progress, moving rapidly towards practical sensing applications demanded by medical therapy and diagnostics (theranostics). The Developments can be divided into three main categories: (i) novel devices and measurement concepts including advanced updates of classical approaches that push medical sensing into the spotlight; (ii) new demonstrations of photonic integrated circuit (PIC-)based IR devices enabling highly miniaturized sensors for point-of-care application as well as medical and wellness wearables; and (iii) technologically-mature IR demonstrators that enable first medical sensing and treatment applications. This roadmap paper provides a consolidated overview of this highly dynamic and interdisciplinary research field with a focus on the major roadblocks that limit the widespread adoption of IR photonics in large-scale medical diagnostics. Special attention is given to the ambivalence between the molecular-level spectroscopic interpretation and a broader health-state assessment, highlighting the need for a common framework. Additionally, the paper discusses the critical importance of unified measurement standards, calibration protocols, and medical certification processes to ensure the validity of experimental results, reproducibility, and clinical trust, particularly when novel experimental techniques and AI algorithms are involved. Perspectives from major past and current contributors to application-oriented IR photonics will be provided.

physics.app-ph

Sensitive and accurate femtosecond pulse characterization via two-photon absorption in Fabry-Pérot laser diodes

Semiconductor lasers offer native bifunctionality enabling coherent light emission and linear photodetection. They can also operate as sensitive two-photon absorption detectors due to the third-order nonlinearity of the heterostructure constituting the active region. The strong two-photon response at room temperature is highly desired in ultrafast optics, where such detectors are used for interferometric characterization of femtosecond light pulses for shape and duration. Another niche is pulse detection in dual-comb ranging. While prior studies have focused on the two-photon response of commercial photodiodes or proprietary semiconductor microcavities for intensity autocorrelation measurements, a systematic analysis of the semiconductor lasers ability to accurately characterize the optical pulse width is missing. To address this niche, here we measure autocorrelation traces of femtosecond pulses with varying durations from sub 55 fs to 260 fs at the common 1.5 $μ$m wavelength using AlGaAs and InGaAsP laser diodes designed to operate at emission wavelengths of 0.95 $μ$m and 1.3 $μ$m, respectively. We validate the obtained waveforms using a silicon avalanche photodetector and conventional crystal-based second-harmonic autocorrelator. We consider the effects of optical polarization, operation mode and electrical load resistance on the shape and intensity of generated electrical signals. Our results prove the suitability of Fabry-Pérot laser structures for interferometric autocorrelation measurements of 53 $μ$W (220 fJ pulse energy) average power pulses as short as 36 fs with a mean square error of 7 $\times$ 10$^{-3}$.

physics.optics

Ultra-broadband room-temperature Fourier transform spectrometer with watt-level power consumption

Fourier-transform infrared spectroscopy (FTIR) has matured into a versatile technique with relevance for environmental monitoring, pharmaceutical research, and food safety applications. However, compared to other spectroscopic methods, it experiences slower progress in terms of power optimization, miniaturization, and adoption by industry. To overcome this limitation, we developed an ultra-broadband room-temperature FTIR instrument relying on commercially available components that offers a spectral coverage from 1.6 $μ$m to 31 $μ$m (9.7-190 THz) without changing optics at a single-Watt-level of electrical power consumption. To demonstrate the capabilities of the instrument, we measured atmospheric species in multiple spectral regions with better than 1.5 cm$^{-1}$ resolution.

physics.ins-det

Broadband THz wave generation and detection in organic crystal PNPA at MHz repetition rates

Organic nonlinear optical (NLO) crystals have emerged as efficient room-temperature emitters of broadband THz radiation with high electric field strengths. Although initially confined to high-pulse-energy excitation in the millijoule range with kHz rates, recent efforts have focused on tailoring the physical properties of organic NLO materials for compatibility with popular MHz-rate telecommunication wavelength lasers emitting nanojoule energy pulses. This is motivated by the large potential of such crystals for more portable and user-safe spectroscopic systems, additionally complemented by their room-temperature field-sensitive THz detection capabilities. In this work, we demonstrate the MHz-rate operation of the organic crystal PNPA ((E)-4-((4-nitrobenzylidene)amino)-$N$-phenylaniline), which was recently discovered through data mining algorithms and reported to surpass the conversion efficiency of rivaling NLO crystals at 1 kHz repetition rate. Using a compact 200 mW Er:fiber laser producing 18 fs pulses at 50 MHz repetition rate, we demonstrate the THz field generation and detection capabilities of PNPA via performing gas phase spectroscopy in the 1.3-8.5 THz range. We obtain a dynamic range of 40 dB over 3.6 s and 70 dB over 2 hours. Our work extends the family of organic crystals compatible with telecommunication-wavelength excitation using nJ pulses for spectroscopy beyond 5 THz.

physics.optics