System ReactIR 702L, TEMCT

System ReactIR 702L, TEMCT

Improve Reaction Understanding

Compact real-time FTIR analyzer for chemical and pharmaceutical development monitors reaction progression in situ, accelerating process development; track reactants, intermediates, and products to optimize kinetics, mechanisms, and pathways.

For Use In
Laboratory
Software
iC IR
Detector
TE MCT
Optical Range (Base Unit)
4000 - 800 cm-1
Purge Requirement
No
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System ReactIR 701L, LN2

System ReactIR 701L, LN2

Performance Simplified

High sensitivity real-time FTIR analyzer for chemical and pharmaceutical development monitors reaction progression in situ, accelerating process development; track reactants, intermediates, and products to optimize kinetics, mechanisms, and pathways.

For Use In
Laboratory
Software
iC IR
Detector
LN2 MCT
Optical Range (Base Unit)
4000 – 650 cm-1
Purge Requirement
No
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Base Unit HL ReactIR 45P

Base Unit HL ReactIR 45P

Improve Process Efficiency

Rugged real-time FTIR analyzer monitors reaction progression in situ. Enabling processes to be successfully moved from lab to pilot to production, while meeting the stringent safety requirements of equipment used in a hazardous or classified area.

For Use In
Lab, Pilot Plant, or Production
Software
iC IR; iC Process
Detector
DTGS; SE MCT
Optical Range (Base Unit)
4000 – 650 cm-1
Purge Requirement
Yes
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How FTIR Works: The Michelson Interferometer and Fourier Transform

FTIR Sampling Techniques: Transmission, ATR, and In‑Situ Analysis

Advantages of FTIR: Speed, Sensitivity, and Spectral Resolution

In-Situ FTIR for Chemical Reaction Monitoring and Process Control

Pharmaceuticals

Chemicals

Polymers

In-Situ FTIR Analysis White Papers
In-Situ FTIR Spectroscopy Webinars

Pharmaceuticals

Chemicals

Polymers

What is the difference between IR and FTIR?

Traditional IR spectroscopy is dispersive, measuring one wavelength at a time, whereas FTIR (Fourier Transform Infrared) measures all frequencies simultaneously using an interferometer. This results in significantly faster data collection, higher resolution, and a much better signal-to-noise ratio. 

What does an FTIR spectrum tell you?

An FTIR spectrum acts as a molecular fingerprint, showing peaks that correspond to specific chemical bond vibrations (stretching, bending) at characteristic wavenumbers. It allows researchers to identify functional groups, determine chemical structures, and quantify components within a mixture. 

Why is FTIR used for in-situ reaction monitoring?

FTIR is ideal for in-situ reaction monitoring because it provides real-time data on reactant consumption, intermediate formation, and product generation as chemistry progresses. Using probe-based FTIR technology, scientists can track reaction kinetics, reaction mechanisms, and endpoint determination under actual process conditions without disturbing the sample.

What are the main advantages of FTIR over dispersive IR spectroscopy?

FTIR offers three primary advantages: the Felgett (multiplex) advantage, where all frequencies are measured simultaneously for faster results; the Jacquinot (throughput) advantage, which allows more energy to reach the detector for higher sensitivity; and the Connes (frequency precision) advantage, utilizing internal laser calibration for high wavelength accuracy.

What is ATR-FTIR and when should it be used? 

Attenuated Total Reflectance (ATR) is a sampling technique where IR light reflects off the internal surface of a high-refractive-index crystal in contact with the sample. It is ideal for analyzing solids, liquids, and pastes without extensive sample preparation, making it the standard for rapid material identification.

Can FTIR be used for quantitative analysis? 

Yes, FTIR is highly effective for quantitative analysis by applying the Beer-Lambert Law. By measuring the absorbance intensity of specific functional group peaks, scientists can determine the concentration of components in a mixture with high precision. 

What are the some core applications of FTIR?

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