ACS Omega· 2026Q1
A Four-Mirror Incoherent Broadband Cavity-Enhanced Absorption Spectrometer for Trace Gas Detection
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- Q1SCImago
- 2026year
Short summary
A novel four-mirror spectrometer design achieves sensitive trace gas detection with a limit of 0.3 Mm⁻¹ at 60s averaging, offering enhanced flexibility and stability over conventional linear cavities.
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Key points
- Demonstrated a four-mirror resonator IBBCEAS for trace gas detection.
- Achieved a detection limit of 0.3 Mm⁻¹ at 60s averaging in the 480–550 nm region.
- The design offers enhanced alignment flexibility and multiplexed detection capabilities.
- Utilizes high-reflectivity mirrors (∼99.9%) for a long effective optical path in a compact footprint.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract A four-mirror resonator-based incoherent broadband cavity-enhanced absorption spectrometer (IBBCEAS) is demonstrated for the first time for sensitive trace gas detection. The proposed geometry addresses limitations of conventional linear cavities by enabling enhanced alignment flexibility and multiplexed detection through multiple output ports, allowing selective sensitivity optimization for simultaneous multispecies measurements. The resonator, constructed using four high-reflectivity dielectric mirrors (∼99.9% and ∼99.98% over 400–550 nm), provides a long effective optical path length within a compact footprint, while the transmitted light is detected using a CCD array for high-resolution broadband analysis. The optical stability of the cavity is evaluated theoretically based on cavity length and mirror radius of curvature. Laboratory experiments demonstrate a detection limit of 0.3 Mm1– at 60 s averaging in the 480–550 nm region. Instrument performance is validated using calibrated concentrations of nitrogen dioxide and iodine. Owing to its flexibility, stability, and capability for selective sensitivity enhancement, the proposed system is well suited for field deployment and identifying wide range of gas detection in space-constrained environments.
The authors' abstract, as published at the source. ACS Omega, 2026 · DOI ↗
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Field: Spectroscopy
SpectroscopyChemistry