Enantiomeric and diastereomeric separations of fragrance and essential oil components using the ACQUITY UPC2 System with ACQUITY UPC2 Trefoil Columns
Applications | 2014 | WatersInstrumentation
This study addresses the critical role of chiral analysis in fragrances and essential oils. Enantiomeric purity influences aroma perception, product authenticity and quality. Conventional gas chromatography methods require lengthy run times, creating a need for faster, high-resolution techniques compatible with mass spectrometry.
The aim was to evaluate the ACQUITY UPC 2 System with Trefoil AMY1 and CEL1 columns for enantiomeric and diastereomeric separation of four fragrance compounds: carvone, linalool, terpinen-4-ol and nerolidol. Performance was compared to traditional GC and SFC approaches, highlighting improvements in speed, resolution and ease of use.
UPC 2 technology can be extended to chiral separations in pharmaceuticals and natural products. Advances in chiral stationary phases and integration with automated, real-time MS quantification will further enhance throughput and analytical robustness in quality control laboratories.
The Waters ACQUITY UPC 2 System with Trefoil AMY1 and CEL1 columns delivers rapid, efficient enantiomeric and diastereomeric separations of fragrance compounds. Its combination of high resolution, fast analysis and MS compatibility represents a significant advancement over traditional GC and SFC methods.
Consumables, LC/MS, LC/MS/MS, LC columns, LC/QQQ, SFC
IndustriesFood & Agriculture
ManufacturerWaters
Summary
Significance of the Topic
This study addresses the critical role of chiral analysis in fragrances and essential oils. Enantiomeric purity influences aroma perception, product authenticity and quality. Conventional gas chromatography methods require lengthy run times, creating a need for faster, high-resolution techniques compatible with mass spectrometry.
Objectives and Overview
The aim was to evaluate the ACQUITY UPC 2 System with Trefoil AMY1 and CEL1 columns for enantiomeric and diastereomeric separation of four fragrance compounds: carvone, linalool, terpinen-4-ol and nerolidol. Performance was compared to traditional GC and SFC approaches, highlighting improvements in speed, resolution and ease of use.
Methodology and Instrumentation
- ACQUITY UPC 2 System with PDA and TQ detectors, controlled by MassLynx software
- Columns: Trefoil AMY1 and CEL1, 2.5 µm particles, 3.0 × 150 mm
- Mobile phase A: CO₂; B: isopropanol (isocratic or gradient 2–7 % B)
- Conditions: 40 °C; 1740 psi backpressure; flow rates 0.9–1.5 mL/min
- Samples: standards and commercial essential oils diluted in TBME, direct injection
Main Results and Discussion
- Carvone (CEL1): baseline resolution of enantiomers in <2.5 min; single-enantiomer standards showed 98 % e.e., peak widths 2–3 s
- Linalool (AMY1): standard non-racemic (40 % e.e.); lavender oil exhibited 92 % e.e. favoring the late eluting isomer, confirmed by MS
- Terpinen-4-ol (AMY1): synthetic standard nearly racemic; tea tree oil showed 68.9 % early isomer (37 % e.e.)
- Nerolidol (AMY1): simultaneous separation of four stereoisomers in <3 min, detected by UV at 215 nm and SIR m/z 205.2 (dehydration fragment)
Benefits and Practical Applications
- Run times reduced from 15–50 min to 2–3 min
- High resolution and sensitivity due to sub-2 µm particles and minimal extra-column volume
- Direct injection of complex oils, eliminating extensive sample preparation
- MS compatibility for unambiguous peak identification in mixtures
Future Trends and Potential Applications
UPC 2 technology can be extended to chiral separations in pharmaceuticals and natural products. Advances in chiral stationary phases and integration with automated, real-time MS quantification will further enhance throughput and analytical robustness in quality control laboratories.
Conclusion
The Waters ACQUITY UPC 2 System with Trefoil AMY1 and CEL1 columns delivers rapid, efficient enantiomeric and diastereomeric separations of fragrance compounds. Its combination of high resolution, fast analysis and MS compatibility represents a significant advancement over traditional GC and SFC methods.
Reference
- Leffingwell J, Leffingwell D. Chiral chemistry in flavours and fragrances. Specialty Chemicals Magazine. 2010;30–33.
- Ravid U, et al. Chiral GC analysis of carvone in essential oils. Flavour and Fragrance Journal. 1992;7(5):289–292.
- Konig W, Hochmuth D. Enantioselective GC in flavor analysis. Journal of Chromatographic Science. 2004;44:423–429.
- Uzi R, et al. Enantiomeric composition of terpinen-4-ol. Flavour and Fragrance Journal. 1992;7(1):49–52.
- Yaguchi Y. Enantiomer separation by supercritical fluid chromatography. Seibutsu Kogaku Kaishi. 2010;88(10):520–524.
- Sugimoto D, et al. Enantioselective flavor chemistry by SFC. Proc. 8th Wartburg Symposium. 2007:340–344.
- Martin D, Gershenzon J, Bohlmann J. Volatile terpene biosynthesis induced by jasmonate. Plant Physiology. 2003;132(3):1586–1589.
Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.
Similar PDF
ACQUITY UPC2 - FOOD APPLICATION NOTEBOOK
2015|Waters|Guides
ACQUIT Y U P C 2 FOOD A P P LICAT ION NOT EBOOK Expanding analytical capability of food testing laboratories [ ACQUITY UPC 2 FOOD APPLICATIONS ] THE EASE OF REVERSED PHASE MEETS THE POWER OF NORMAL PHASE LC…
Key words
density, densityminutes, minutestriazole, triazolefungicides, fungicidesenantioseparation, enantioseparationacid, acidfluid, fluidsfc, sfcwaters, watersstraw, strawffa, ffamodulation, modulationtime, timesupercritical, supercriticalgrain
Reaction Monitoring of a Rosuvastatin Synthesis Featuring Enantiopurity Determination by ACQUITY UPC,2 ACQUITY QDa, and Trefoil Column Technology
2015|Waters|Applications
Reaction Monitoring of a Rosuvastatin Synthesis Featuring Enantiopurity Determination by ACQUITY UPC,2 ACQUITY QDa, and Trefoil Column Technology Jacob N. Fairchild1 and Michael D. Jones1,2 1 Waters Corporation, Milford, MA, USA; 2 King’s College London, London, UK A P P…
Key words
rosuvastatin, rosuvastatinenantiopurity, enantiopurityreaction, reactionsynthesis, synthesisfeaturing, featuringachiral, achiralchiral, chiralqda, qdamonitoring, monitoringacquity, acquitysynthetic, syntheticpyrimidine, pyrimidineconvergence, convergencedetermination, determinationenantiomers
Stereoselective Separation of Triazole Fungicides Using the ACQUITY UPC2 System and ACQUITY UPC2 Trefoil Chiral Columns
2015|Waters|Applications
Stereoselective Separation of Triazole Fungicides Using the ACQUITY UPC 2 System and ACQUITY UPC 2 Trefoil Chiral Columns Marian Twohig and Michael O’Leary Waters Corporation, Milford, MA, USA A P P L I C AT I O N B E…
Key words
enantiomeric, enantiomericuniconazole, uniconazolemethanol, methanoldiniconazole, diniconazolechiral, chiralcyproconazole, cyproconazoletriadimefon, triadimefonbromuconazole, bromuconazolefenbuconazole, fenbuconazolehexaconazole, hexaconazoletetraconazole, tetraconazoleflutriafol, flutriafolpenconazole, penconazolepropiconazole, propiconazoletebuconazole
APPLICATION NOTEBOOK - TARGETED METABOLOMICS AND LIPIDOMICS
2016|Waters|Guides
[ APPLICATION NOTEBOOK ] TARGETED METABOLOMICS AND LIPIDOMICS This notebook is an excerpt from the larger Waters’ Application Notebook on Metabolomics and Lipidomics #720005245EN TABLE OF CONTENTS 3 Introduction 4 A Validated Assay for the Quantification of Amino Acids in…
Key words
lox, loxcox, coxprostanoid, prostanoidlipidomics, lipidomicsoxylipins, oxylipinsuplc, uplcacid, acidacids, acidsbile, bilexevo, xevoacquity, acquityconvergence, convergenceionkey, ionkeytargeted, targetedleukotriene