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IR Spectrometers01:25

IR Spectrometers

2.3K
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...
2.3K
Infrared (IR) Spectroscopy: Overview01:09

Infrared (IR) Spectroscopy: Overview

4.6K
When electromagnetic radiation passes through a material, atoms or molecules transition from a lower to a higher energy state by absorbing radiation corresponding to the energy difference between the two states. The absorption of infrared (IR) radiation causes transitions between vibrational energy levels in a molecule. Therefore, IR spectroscopy is a useful analytical tool for determining the molecular structure of molecules.
Different compounds display unique properties due to their...
4.6K
Attenuated Total Reflectance (ATR) Infrared Spectroscopy: Overview01:13

Attenuated Total Reflectance (ATR) Infrared Spectroscopy: Overview

1.2K
Attenuated total reflectance (ATR) infrared spectroscopy is a powerful analytical technique used to study the composition of materials. It is widely employed in chemistry, materials science, forensic science, and other fields where sample characterization is required. ATR has several advantages over traditional transmission IR spectroscopy, including the requirement of little to no sample preparation and the ability to analyze a wide range of samples.
The ATR process begins by directing a beam...
1.2K
IR Spectrum01:19

IR Spectrum

2.0K
When infrared (IR) radiation passes through a molecule, the bonds stretch or bend by absorbing the radiation. This absorption creates the molecule's absorption spectrum, which is the plot of its percentage transmittance versus wavenumber.
Transmittance is defined as the ratio of the radiant power passing through a sample to that from the radiation's source. Multiplying the transmittance by 100 gives the percent transmittance (%T), which varies between 100% (no absorption) and 0%...
2.0K
Applications of IR Spectroscopy: Overview01:11

Applications of IR Spectroscopy: Overview

2.0K
The non-destructive nature and ability to provide valuable chemical information make IR spectroscopy a versatile technique with broad applications in various scientific and industrial fields. IR spectroscopy is commonly used to identify and characterize organic and inorganic compounds. It provides information about the functional groups present in a molecule and the bonding between atoms. This helps in the structural elucidation of compounds during organic synthesis, pharmaceutical research,...
2.0K
IR Spectroscopy: Hooke's Law Approximation of Molecular Vibration01:16

IR Spectroscopy: Hooke's Law Approximation of Molecular Vibration

2.7K
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...
2.7K

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Related Experiment Video

Updated: Jan 15, 2026

Author Spotlight: Advances in Nanoscale Infrared Spectroscopy to Explore Multiphase Polymeric Systems
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Inverse Infrared Spectral Deconvolution for Quantitative Analysis of Polymer Mixtures in Scattering Media.

Proity Nayeeb Akbar1, Reinhold Blümel1

  • 1Department of Physics, Wesleyan University, 265 Church Street, Middletown, Connecticut 06459-0155, United States.

Analytical Chemistry
|October 16, 2025
PubMed
Summary

This study introduces a new Infrared (IR) spectroscopy method to non-destructively identify components in complex mixtures. The algorithm effectively removes scattering effects, enabling accurate analysis of composite materials for various applications.

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Area of Science:

  • Analytical Chemistry
  • Spectroscopy
  • Materials Science

Background:

  • Infrared (IR) spectroscopy is vital for material identification based on functional groups.
  • Interpreting IR spectra of composite materials, especially small, scattering samples, presents significant challenges for analytical and forensic labs.
  • Existing methods often require complex separation techniques or extensive calibration.

Purpose of the Study:

  • To develop an innovative, non-destructive IR-based method for identifying individual components within strongly scattering composite mixtures.
  • To overcome the limitations of traditional IR spectroscopy in analyzing complex samples.
  • To provide a more accessible and automated solution for spectral analysis.

Main Methods:

  • The study focused on two- and multicomponent, strongly scattering, homogeneous, mixed-composition microspheres filled with organic polymers.
  • An innovative IR-based algorithm was developed to eliminate scattering effects.
  • The method was designed to be noninvasive and potentially automatable.

Main Results:

  • The algorithm successfully reconstructs pure absorption spectra of functional groups in composite systems.
  • It accurately identifies the number of components within a mixture.
  • The method determines the volume fractions of constituents and generates pure permittivity spectra for each component.
  • Scattering effects were effectively eliminated, simplifying spectral interpretation.

Conclusions:

  • The developed IR spectroscopy method non-destructively identifies components in complex mixtures, overcoming scattering challenges.
  • This technique offers accurate quantification and identification without invasive separation or lengthy calibration.
  • The method has broad applicability in analytical and forensic chemistry, including drug formulation analysis and microplastic identification.