Related Experiment Video
Updated: Apr 8, 2026

Metabolomic Analysis of Barley by Gas Chromatography/Mass Spectrometry
Published on: November 8, 2024
A mass spectrometric study of the acid-catalysed d-fructose dehydration in the gas phase
Federico Pepi1, Andreina Ricci2, Stefania Garzoli1
1Department of Chemistry and Drugs Technologies, 'Sapienza' University of Rome, P.le A. Moro, 5-00185 Rome, Italy.
Abstract:
5-hydroxymethylfuraldehyde (5-HMF) and simpler compounds, such as levulinic acid (LA) and glyceraldehyde, are platform molecules produced by the thermal acid-catalyzed dehydration of carbohydrates coming from biomass. Understanding sugar degradation pathways on a molecular level is necessary to increase selectivity, reduce degradation by-products yields and optimize catalytic strategies, fundamental knowledge for the development of a sustainable renewable industry. In this work gaseous protonated d-fructose ions, generated in the ESI source of a triple quadrupole mass spectrometer, were allowed to undergo Collisionally Activated Decomposition (CAD) into the quadrupole collision cell. The ionic intermediates and products derived from protonated d-fructose dehydration were structurally characterized by their fragmentation patterns and the relative water-loss dehydration energies measured by energy-resolved CAD mass spectra. The data were compared with those obtained from protonated d-glucose decomposition in the same experimental conditions. In the gas phase, d-fructose dehydration leads to the formation of a mixed population of isomeric [C6H6O3]H(+) ions, whose structures do not correspond exclusively to 5-hydroxymethyl-2-furaldehyde protonated at the more basic aldehydic group.
Related Concept Videos
Mass Spectrometry: Alcohol Fragmentation
Mass Spectrometry: Carboxylic Acid, Ester, and Amide Fragmentation
For example, the...
Mass Spectrometry: Aldehyde and Ketone Fragmentation
Mass Spectrometry: Branched Alkane Fragmentation
¹³C NMR: Distortionless Enhancement by Polarization Transfer (DEPT)
Mass Spectrometry: Aromatic Compound Fragmentation

