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MassHunter PFAS MRM Database (for analysis of Per/Polyfluoroalkyl substances) - Quick Start Guide

Manuals | 2020 | Agilent TechnologiesInstrumentation
Software, LC/MS, LC/MS/MS, LC/QQQ
Industries
Environmental
Manufacturer
Agilent Technologies

Summary

Significance of PFAS Analysis


Per- and polyfluoroalkyl substances (PFAS) pose significant environmental and health concerns due to their persistence and bioaccumulation. Reliable, sensitive screening methods are essential for regulatory compliance and risk assessment in water, soil, and biota monitoring.

Study Objectives and Overview


The MassHunter PFAS MRM Database Quick Start Guide introduces an optimized LC/MS workflow that screens 108 native and isotope-labeled PFAS analytes using targeted multiple reaction monitoring (MRM), dynamic MRM (dMRM), and triggered MRM (tMRM). It aims to streamline method development and support regulatory EPA, ASTM, ISO, and EU DWD requirements.

Methodology and Instrumentation


The workflow is based on Agilent LC/MS platforms configured with PFAS-free HPLC components. Key instrumentation:
  • Agilent 1290 Infinity II HPLC with PFC-free Conversion Kit (p/n 5004-0006)
  • ZORBAX RRHD Eclipse Plus C18 column, 2.1×100 mm, 1.8 μm (p/n 959758-902)
  • 6470B, 6495C, and Ultivo triple quadrupole LC/MS systems with Jet Stream source
Gradient elution uses 5 mM ammonium formate in water (A) and methanol (B) over a 14.5 min run time. MRM transitions and optimized collision energies are imported directly from the database.

Main Results and Discussion


The database provides up to four transitions per compound, facilitating high-sensitivity screening in a single run. Example methods (Base and Comprehensive) demonstrate minimal retention time shifts and robust quantitation. The guide details workflows for single and multiple standard mixes, illustrating method import, retention time alignment, and transition optimization.

Benefits and Practical Applications


The MassHunter PFAS MRM Database accelerates analytical setup by eliminating manual transition optimization, reducing development time and enhancing reproducibility. It supports environmental monitoring, industrial quality control, and regulatory analyses with validated workflows and example data.

Future Trends and Applications


Ongoing trends include expanding PFAS coverage, incorporating high-throughput dMRM/tMRM strategies, and adapting workflows to complex matrices using automated retention time scheduling. Integration with data analytics platforms and machine learning will further improve sensitivity and specificity.

Conclusion


The MassHunter PFAS MRM Database Quick Start Guide delivers a comprehensive, ready-to-use LC/MS framework for PFAS screening. By leveraging predefined transitions and example methods, laboratories can achieve rapid, reliable analyses aligned with current regulatory standards.

Content was automatically generated from an orignal PDF document using AI and may contain inaccuracies.

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