- Minimal size for improved space utilization, utilizing highly convenient DialPath and TumblIR liquid sampling technologies
- Facilitates analytical experiments with simple and user-friendly software, compliant with 21 CFR Part 11

Agilent Korea (CEO Seung-Yeol Kim) announced the launch of the 'Cary 630 Fourier Transform Infrared Spectrometer' (FTIR), the world's smallest molecular spectrometer.
Fourier transform infrared spectrometers are analytical instruments that analyze samples of solids, liquids, and gases using wavelengths of light in the infrared region, and are utilized in the fields of quality assurance and quality control (QA/QC) in the pharmaceutical and chemical industries, as well as in material testing and academic research.
Agilent Cary 630 Fourier Trans Infrared Spectrometer
The Agilent Cary 630 Fourier Transform Infrared Spectrometer weighs 3.8 kg and measures 16 x 22 x 13 cm, maximizing laboratory space utilization. It also features Agilent's proprietary liquid quantitative sampling technologies, DialPath and TumblIR, enabling very convenient liquid quantitative analysis.
In addition, various automatic recognition sampling accessories designed with customer application analysis in mind are easy to replace and eliminate the need for separate optical alignment, providing excellent performance, ease of use, and versatility to meet the requirements of users and high-workload environments.
In addition, the easy and convenient software automatically guides you through all analysis steps, allows you to easily visually verify whether the sample is being measured accurately through step-by-step procedures, and fully complies with the 21 CFR Part 11 regulations required by the pharmaceutical industry.
"Agilent is committed to providing solutions that improve our customers' workflows and save time and money," said Philip Binns, Vice President of Agilent's Spectrometer business unit. "The Cary 630 is the world's smallest instrument, yet it is a product packed with exceptional value, performance, and utility that will bring about a major change in the approach to sample measurement."

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