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Related Concept Videos

IR Spectrometers01:25

IR Spectrometers

There are two main infrared (IR) spectrophotometers: dispersive IR spectrometers and Fourier transform infrared (FTIR) spectrometers. In a dispersive IR spectrometer, a beam of infrared radiation produced by a hot wire is divided into two parallel equal-intensity beams using mirrors. One beam passes through the sample, while another is a reference beam. The beams then move through the monochromator, which separates the radiations into a continuous spectrum of different frequencies. The...
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Inductively Coupled Plasma Atomic Emission Spectroscopy: Instrumentation

Inductively coupled plasma (ICP) is the common plasma source used in atomic emission spectroscopy (AES), a technique that detects and analyzes various elements in a sample. This method is often called inductively coupled plasma atomic emission spectroscopy (ICP-AES).
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Raman Spectroscopy Instrumentation: Overview01:26

Raman Spectroscopy Instrumentation: Overview

A conventional Raman spectrophotometer includes a laser source, a sample holding system, a wavelength selector, and a detector.
The monochromatic laser source, typically using visible or near-infrared radiation, generates a highly focused beam of light. This light interacts with the molecules of the sample, scattering some of the light. Liquid and gaseous samples are usually tested in ordinary glass capillaries, while solids can be analyzed as powders packed in capillaries or as potassium...
UV–Vis Spectrometers01:14

UV–Vis Spectrometers

The absorbance of UV and visible (UV–visible) radiations is measured using a UV–visible spectrophotometer. Deuterium lamps, which emit UV radiation, and tungsten lamps, which produce radiation in the visible region, are used as light sources in UV–visible spectrophotometers. A monochromator or prism is used for diffraction grating, i.e., to split the incoming radiation into different wavelengths. A system of slits is used to focus the desired wavelength on the sample cell. Samples for...
Gas Chromatography–Mass Spectrometry (GC–MS)01:14

Gas Chromatography–Mass Spectrometry (GC–MS)

Gas chromatography–mass spectrometry (GC–MS) is the combination of analytical techniques of gas chromatography and mass spectrometry in a single instrument for analyzing a mixture of compounds. The gas chromatograph separates the compounds in the mixture, and the mass spectrometer analyzes each compound separately to determine the molecular masses and molecular structures.
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Atomic Emission Spectroscopy: Instrumentation

The instrumentation of atomic emission spectrometry (AES) involves various components, including atomization devices that convert samples into gas-phase atoms and ions. There are two main types of atomization devices: continuous and discrete atomizers.  Continuous atomizers, like plasmas and flames, introduce samples in a constant stream, while discrete atomizers inject individual samples using syringes or autosamplers. The most common discrete atomizer is the electrothermal atomizer.

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A Grille Spectrometer for Measurements near 14 micro.

Applied optics·2010
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The circularly symmetric grille spectrometer.

B A Tinsley1

  • 1Southwest Center for Advanced Studies,Dallas, Texas 75230, USA.

Applied Optics
|January 6, 2010
PubMed
Summary

A novel grille spectrometer collects significantly more light than traditional instruments, improving signal-to-noise ratios for airglow observations, especially with faint light sources.

Area of Science:

  • * Spectroscopy and Optical Instrumentation
  • * Atmospheric Physics and Remote Sensing

Background:

  • * Traditional slit spectrometers and scanning Fabry-Perot spectrometers have limitations in light-gathering capacity for extended sources.
  • * Observing faint atmospheric phenomena like airglow requires instruments with high sensitivity and signal-to-noise ratios.

Purpose of the Study:

  • * To introduce and evaluate a novel grille spectrometer design.
  • * To compare the performance of the grille spectrometer against slit and Fabry-Perot spectrometers.
  • * To assess its suitability for airglow observation.

Main Methods:

  • * Construction of a grille spectrometer utilizing alternately transparent and nontransparent concentric circular zones.
  • * Comparative analysis of light-gathering capabilities and signal-to-noise ratios with slit and Fabry-Perot spectrometers.

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  • * Application of the grille spectrometer for real-world airglow observation.
  • Main Results:

    • * The grille spectrometer demonstrates orders of magnitude greater light collection than slit spectrometers at the same resolution.
    • * It offers superior light-gathering capacity compared to scanning Fabry-Perot spectrometers of equivalent resolution.
    • * Enhanced signal-to-noise ratios were observed, particularly for extended sources with low brightness and for emission-line and continuum airglow sources when paired with a premonochromator.

    Conclusions:

    • * The grille spectrometer is a highly efficient instrument for collecting light from extended sources.
    • * It provides significant advantages in signal-to-noise ratio over conventional spectrometers for specific observational scenarios.
    • * The instrument is effectively utilized for advancing airglow observation studies.