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Flame Photometry: Overview01:02

Flame Photometry: Overview

Flame photometry, also known as flame emission spectrometry, is a technique used for the qualitative and quantitative analysis of elements present in a sample using a flame as the source of excitation energy. The concept of flame photometry was realized in the early 1860s by Kirchhoff and Bunsen, who discovered that specific elements emit characteristic radiation when excited in flames. The first instrument developed for this purpose was used to measure sodium (Na) in plant ash using a Bunsen...
Flame Photometry: Lab01:16

Flame Photometry: Lab

In a flame photometer, when a solution like potassium chloride is aspirated into the flame, the solvent evaporates, leaving behind dehydrated salt. This salt dissociates into free gaseous atoms in their ground state. Some of these atoms absorb energy from the flame, leading to their excitation. The excited atoms return to the ground state, emitting photons at characteristic wavelengths. Because only electronic transitions are involved, the resulting emission lines are very narrow. The intensity...
Atomic Spectroscopy: Effects of Temperature01:27

Atomic Spectroscopy: Effects of Temperature

Atomization, converting samples into gas-phase atoms and ions, is essential for atomic spectroscopy. The flame temperature required for atomization affects the efficiency of the atomic spectroscopic methods by increasing the atomization efficiency and the relative population of the excited and ground states.
At thermal equilibrium, the relative populations of excited and ground state atoms can be estimated using the Maxwell–Boltzmann distribution. For example, an increase in temperature from...
Fluorescence and Phosphorescence: Instrumentation01:25

Fluorescence and Phosphorescence: Instrumentation

Fluorometers and spectrofluorometers are two types of instruments used for measuring molecular fluorescence. These instruments differ in how they select excitation and emission wavelengths and the type of light sources they utilize. Fluorometers use absorption interference filters to choose excitation and emission wavelengths. The excitation source in a fluorometer is typically a low-pressure mercury vapor lamp that emits intense lines distributed throughout the ultraviolet and visible regions.
Atomic Fluorescence Spectroscopy01:29

Atomic Fluorescence Spectroscopy

Atomic fluorescence spectroscopy (AFS) is an analytical technique that involves the electronic transitions of atoms in a flame, furnace, or plasma being excited by electromagnetic (EM) radiation. When these atoms absorb energy, they become excited and subsequently release energy as they return to their original state. This emitted light, or "fluorescence," is observed at a right angle to the incident beam. Both absorption and emission processes transpire at distinct wavelengths, which are...
Photoluminescence: Applications01:14

Photoluminescence: Applications

Photoluminescence offers a wide range of applications due to its inherent sensitivity and selectivity. This technique allows for both direct and indirect analyses of the analyte. Direct quantitative analysis is possible when the analyte exhibits a favorable quantum yield for fluorescence or phosphorescence. However, an indirect analysis may be feasible if the analyte is not fluorescent or phosphorescent, or if the quantum yield is unfavorable. Indirect methods include reacting the analyte with...

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Updated: Jun 20, 2026

Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry
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Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry

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Flame-temperature measurements using the Rayleigh scattering photon-correlation technique.

J Haumann, A Leipertz

    Optics Letters
    |September 2, 2009
    PubMed
    Summary

    This study introduces a novel Rayleigh scattering photon-correlation technique for precise flame-temperature measurements. This method enables the detection of dynamic temperature structures even with very low scattering intensities.

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    Area of Science:

    • * Combustion diagnostics
    • * Laser-based measurement techniques
    • * Fluid dynamics

    Background:

    • * Accurate flame temperature measurement is crucial for understanding combustion processes.
    • * Existing techniques may have limitations in sensitivity or temporal resolution.
    • * Characterizing dynamic temperature structures requires advanced diagnostic tools.

    Purpose of the Study:

    • * To present a novel Rayleigh scattering photon-correlation technique for flame temperature measurements.
    • * To demonstrate the capability of measuring temporally varying temperature structures.
    • * To explore the potential for using low-power lasers for high-speed combustion analysis.

    Main Methods:

    • * Utilized a Rayleigh scattering photon-correlation technique.
    • * Employed a digital correlator for data analysis.
    • * Applied the method to study flame temperature dynamics.

    Main Results:

    • * Successfully measured flame temperatures using the photon-correlation technique.
    • * Determined temporally varying temperature structures, including coherence structures.
    • * Demonstrated feasibility for measurements with extremely low scattering intensities.
    • * Showcased the potential for investigating fast (kilohertz) processes with low-power continuous-wave (cw) lasers.
    • * Differentiated between Rayleigh scatterers and Mie scatterers (e.g., soot particles) based on their temporal behavior in particle-laden flames.

    Conclusions:

    • * The presented Rayleigh scattering photon-correlation technique offers a new, sensitive method for flame temperature diagnostics.
    • * The technique allows for the characterization of dynamic temperature fluctuations in flames.
    • * This approach is suitable for studying fast combustion phenomena and can distinguish particle scattering effects.