Related Experiment Video
Updated: Feb 20, 2026

10:42
Infrared Degenerate Four-wave Mixing with Upconversion Detection for Quantitative Gas Sensing
Published on: March 22, 2019
6.6K
Probing methane in air with a midinfrared frequency comb source.
Applied Optics
|October 20, 2017
Summary
We used a mid-infrared frequency comb for sensitive methane detection in air. This method achieved a low detection limit, enabling accurate measurements of methane and water vapor concentrations.
Area of Science:
- Spectroscopy
- Environmental Science
- Laser Technology
Background:
- Accurate monitoring of atmospheric gases like methane is crucial for environmental studies.
- Traditional methods for gas detection can be limited in sensitivity or spectral range.
Purpose of the Study:
- To develop and demonstrate a highly sensitive method for methane detection in ambient air using a mid-infrared frequency comb.
- To quantify methane and water vapor concentrations with high accuracy and a broad spectral range.
Main Methods:
- Utilized a mid-infrared frequency comb source for spectroscopic analysis.
- Recorded transmitted spectra using an optical spectrum analyzer over a 500 nm bandwidth.
- Employed various path lengths and compared normalized absorption spectra with simulations.
Main Results:
- Achieved a 3σ detection limit of approximately 6.6×10-7 cm-1 for methane in ambient air.
- Quantitatively determined concentrations of methane and water vapor.
- Demonstrated excellent agreement between measured and calculated spectral profiles.
Conclusions:
- The mid-infrared frequency comb approach offers a broad spectral range, high sensitivity, and accurate calibration for gas detection.
- This technique is suitable for precise monitoring of methane and water vapor in ambient air.
- The method shows significant potential for environmental monitoring applications.
Related Concept Videos
IR Frequency Region: X–H Stretching
1.5K
In IR spectroscopy, signals produced by the X−H bonds (such as C−H, O−H, or N−H) can be observed in the frequency range of 2700–4000 cm–1. The C−H stretching vibration forms sharp bands in the region 2850–3000 cm–1. The presence of the O−H stretching vibration leads to the forming of an absorption band in the frequency range 3650–3200 cm−1. At the same time, N−H stretching can be confirmed by absorption bands in...
1.5K
Mass Spectrum
4.9K
A mass spectrum is the graphical representation of the relative abundance of the charged fragments in an analyte plotted against their mass-to-charge ratio (m/z). The plot's x-axis represents the ratio of the mass of the charged fragment to the number of charges it carries. The y axis of the plot represents the relative abundance of each charged species. The relative abundance is calculated from the signal intensity of each charged species recorded at the detector. The most intense signal (the...
4.9K
IR Spectroscopy: Molecular Vibration Overview
4.9K
When Infrared (IR) radiation passes through a covalently bonded molecule, the bonds transition from lower to higher vibrational levels. The fundamental vibrational motions that result in infrared absorption can be classified as stretching or bending vibrations.
Stretching vibrations are vibrational motions that occur along the bond line, changing the bond length or distance between two bonded atoms. They are further distinguished as symmetric or asymmetric. In symmetric stretching, the...
Stretching vibrations are vibrational motions that occur along the bond line, changing the bond length or distance between two bonded atoms. They are further distinguished as symmetric or asymmetric. In symmetric stretching, the...
4.9K
Gas Chromatography: Types of Detectors-II
1.3K
In gas chromatography, different detectors are employed to meet specific analytical needs. These detectors are often categorized based on their detection mechanisms and the types of compounds they are best suited to analyze. Thermal Conductivity Detectors (TCD), Flame Ionization Detectors (FID), and Electron Capture Detectors (ECD) represent common categories, each with unique operating principles and applications. However, beyond these, several other detectors are designed for more specialized...
1.3K
IR Frequency Region: Fingerprint Region
2.0K
IR spectra are divided into two main regions: the diagnostic region and the fingerprint region. The diagnostic region of the spectrum lies above 1500 cm−1. The absorptions resulting from single-bond vibrations of the N–H, C–H, and O–H stretch at higher wavenumbers and appear on the left side of the spectrum. The stretching absorptions of the C≡C and C≡N occur between 2100–2300 cm−1. In contrast, those arising from stretching absorptions of the...
2.0K
IR Spectroscopy: Hooke's Law Approximation of Molecular Vibration
3.1K
A covalently bonded heteronuclear diatomic molecule can be modeled as two vibrating masses connected by a spring. The vibrational frequency of the bond can be expressed using an equation derived from Hooke's law, which describes how the force applied to stretch or compress a spring is proportional to the displacement of the spring. In this case, the atoms behave like masses, and the bond acts like a spring.
According to Hooke's law, the vibrational frequency is directly proportional to...
According to Hooke's law, the vibrational frequency is directly proportional to...
3.1K

