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A novel demodulation scheme for a point-type fiber sensor is designed for salinity concentration monitoring based on a Sagnac interferometer (SI) composed of a tapered polarization-maintaining fiber (TPMF) and optical time stretching technology. The SI, constructed using a PMF with a taper region of 5.92 μm and an overall length of 30 cm, demonstrated a notable enhancement in the evanescent field, which intensifies the interaction between the light field and external salinity. This enhancement allows for a direct assessment of salinity concentration changes by analyzing the variations in the SI reflection spectra and the experimental results indicate that the sensitivity of the sensor is 0.151 nm/‱. In contrast to traditional fiber optic sensors that depend on spectral demodulation with slower response rates, this work introduces a new approach where the spectral shift is translated to the time domain, utilizing a dispersion compensation fiber (DCF) with the demodulation rate reaching up to 50 MHz. The experimental outcomes reveal that the sensor exhibits a sensitivity of -0.15 ns/‱ in the time domain. The designed sensor is anticipated to play a pivotal role in remote, real-time monitoring of ocean salinity.
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http://dx.doi.org/10.3390/s24165339 | DOI Listing |
Nat Commun
August 2025
Department of Physics and Astronomy, University of California, Irvine, Irvine, CA, 92697, USA.
Nematicity, spontaneous breaking of rotational symmetry, is a ubiquitous phenomenon in correlated quantum matter. Here we show a phase transition in high-quality ScVSn bilayer kagome metal at a temperature , occurring seven Kelvins below the charge density wave transition at , as indicated by thermodynamic, transport, and optical measurements. This emerging intermediate phase does not exhibit spontaneous time-reversal-symmetry breaking, as evidenced by zero-field Sagnac interferometry.
View Article and Find Full Text PDFWe present low-loss (<1.5) and power-efficient Mach-Zehnder interferometers (MZIs) on thin-film lithium niobate. To accurately measure small MZI losses, we develop a self-calibrated method using tunable Sagnac loop reflectors (SLRs) to build cavities.
View Article and Find Full Text PDFThe intersection of quantum mechanics and general relativity remains an open frontier in fundamental physics, with few experimentally accessible phenomena connecting the two. Recent theoretical proposals suggest that relativistic proper time can act as a source of decoherence in quantum systems, providing a testable overlap between the two theories. Here, we propose a chip-integrated Sagnac interferometer where rotation induces a proper time difference between clockwise and counterclockwise single-photon paths.
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March 2025
We report a high-efficiency coherent beam combination (CBC) system operating in the mid-infrared (2.8 µm) spectral region, implemented using two fluoride fiber amplifiers with a configuration of Sagnac-type interferometer. The system exhibits good performance at both continuous-wave (CW) and picosecond-pulse operation conditions.
View Article and Find Full Text PDFIn this paper, a proposed filtering device using a dual Sagnac loop in parallel can switch channel spacing by adjusting the polarization controller angle, achieving outputs with 0.88 and 0.42 nm spacing.
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