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Adaptive laser-tagging optofluidic microcavity for single-molecule hydrogen detection across a nine-decade concentration span
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DOI:10.1038/s41566-026-01955-7.png)
Abstract
En 中文
Optical microcavities are widely used as transducers for gas sensing, yet their performance is constrained by a natural trade-off between sensitivity and dynamic range. Here we introduce a laser-tagging optofluidic microcavity that overcomes this limitation, enabling hydrogen detection across a concentration range spanning from the single-molecule level to 1.53 × 105 ppm. The architecture features a hollow whispering-gallery-mode microcavity, functionally coated on its interior surface with a Pt/WO3 nanofilm. Gas detection is mediated via thermal phonon transfer, which allows efficient gas–material interaction without perturbing the optical field, preserving an ultrahigh intrinsic Q factor of 1.89 × 109 during sensing. Through so-called laser tagging, a probe laser is dynamically locked to the microcavity’s optimal operating point, enabling real-time resonance tracking. This scheme not only suppresses phase noise by more than three orders of magnitude but also facilitates wide-bandwidth optoelectronic heterodyne demodulation. We achieve hertz-level frequency-shift resolution and a measurable resonance shift of up to 1 GHz, allowing the sensor to detect hydrogen concentrations from 3 × 10−5 ppm to 1.53 × 105 ppm. With lock-in amplification, even individual molecular dynamics can be resolved. The device’s integrated, centimetre-scale footprint ensures robust operation outside the laboratory, offering a universal strategy to advance optical microcavities towards ultraprecise metrology applications. Laser tagging in an optofluidic microcavity enables precise hydrogen concentration detection across a broad dynamic range. Using thermal phonon transfer and dynamic resonance tracking, this spectrometry method achieves high sensitivity, low noise and effective selectivity.
Journal
IF:
32.9
Papers:
4.3K
Citations:
6.1W
