News|Hero|July 20, 2026 (Updated: July 20, 2026)

HTC-19 Insights: HPLC–XRF for Environmental Analysis — Future Developments

Gaëlle Spileers from the Separation Science Group in the Department of Organic and Macromolecular Chemistry at Ghent University, Belgium discusses developments in high performance liquid chromatography (HPLC–XRF) for the analysis of brominated flame retardants and other pollutants.

At HTC-19 in Leuven, Belgium, LCGC International spoke to Frederic Lynen and Gaëlle Spileers from the Separation Science Group in the Department of Organic and Macromolecular Chemistry at Ghent University, Belgium about their presentation at the event entitled Advancing HPLC–XRF for the Analysis of Brominated Flame Retardants and Other Pollutants.

In the third part of the interview, Gaëlle Spileers answered the following questions:

• You envision further hyphenation of HPLC–XRF with MS— in practice, how do you see the two detectors working together in a real analytical workflow.

• What are the current limitations of lab-source HPLC–XRF in terms of throughput and sensitivity, and how close is it to being a viable drop-in detector for routine environmental laboratories?

• How will this technique will evolve in the future?

This research presents an improved HPLC–XRF system with enhanced sensitivity through optimization of the flow cell, tubing configuration, and chromatographic conditions. Tribromophenol was used as a model compound to evaluate analytical performance and establish conditions suitable for brominated flame retardant (BFR) analysis.

BFRs remain important environmental contaminants as a result of their persistence, bioaccumulation potential, toxicity, and widespread occurrence in environmental matrices and biological systems.1,4-6Regulatory restrictions have reduced the use of several legacy compounds; however, replacement flame retardants and transformation products continue to present analytical and environmental challenges.5,7–10

While LC–MS and GC–MS provide powerful identification capabilities, quantitative analysis remains dependent on compound-specific standards and can be affected by differences in ionisation efficiency among BFRs.4,5,7 HPLC–XRF addresses these limitations by providing universal elemental quantification, making it a valuable complementary technique for broad screening of known and emerging brominated pollutants.

The methodology was further evaluated using synchrotron XRF at the European Synchrotron Radiation Facility (ESRF).

View the full interview series here:

Why Develop HPLC–XRF?

Advancing HPLC–XRF for the Analysis of Brominated Flame Retardants and Other Pollutants

HPLC–XRF for Environmental Analysis — Future Developments

References

  1. Spileers, G.; Tack, P.; Vincze, L.; Lynen, F. The Hyphenation of High-Performance Liquid Chromatography with X-ray Fluorescence for Universal, Flow-Through, Elemental Analysis of Organobromines. Anal. Chem. 2025, 97 (43), 23905–23913. DOI: https://doi.org/10.1021/acs.analchem.5c03394.
  2. Stockholm Convention Secretariat. Stockholm Convention on Persistent Organic Pollutants. https://chm.pops.int/Home/tabid/10001/Default.aspx (accessed Dec 2, 2025).
  3. EFSA Panel on Contaminants in the Food Chain (CONTAM); Hardy, A.; Benford, D.; Halldorsson, T.; et al. Update of the Risk Assessment of Hexabromocyclododecanes (HBCDDs) in Food. EFSA J. 2021, 19(3), e06421. DOI: https://doi.org/10.2903/j.efsa.2021.6421.
  4. Enyoh, C. E.; Maduka, T. O.; Rana, M. S.; Osigwe, S. C.; Ihenetu, S. C.; Wang, Q. Chemicals from Brominated Flame Retardants: Analytical Methods, Occurrence, Transport and Risks. Appl. Sci. 2024, 14 (17), 7892. DOI: https://doi.org/10.3390/app14177892.
  5. Li, M.; et al. A Review of Occurrence, Bioaccumulation, and Fate of Novel Brominated Flame Retardants in Aquatic Environments: A Comparison with Legacy Brominated Flame Retardants. Sci. Total Environ. 2024, 939, 173224. DOI: https://doi.org/10.1016/j.scitotenv.2024.173224.
  6. Thuy, T. L.; Hoang, T.-D.; Hoang, V.-H.; Nguyen, M.-K. A Review on Flame Retardants in Soils: Occurrence, Environmental Impact, Health Risks, Remediation Strategies, and Future Perspectives. Toxics 2025, 13 (3), 228. DOI: https://doi.org/10.3390/toxics13030228.
  7. Martinez, G.; Niu, J.; Takser, L.; Bellenger, J.-P.; Zhu, J. A Review on the Analytical Procedures of Halogenated Flame Retardants by Gas Chromatography Coupled with Single Quadrupole Mass Spectrometry and Their Levels in Human Samples. Environ. Pollut. 2021, 285, 117476.DOI: https://doi.org/10.1016/j.envpol.2021.117476.
  8. Sharkey, M.; Harrad, S.; Abdallah, M. A.-E.; Drage, D. S.; Berresheim, H. Phasing-Out of Legacy Brominated Flame Retardants: The UNEP Stockholm Convention and Other Legislative Action Worldwide. Environ. Int. 2020, 144, 106041. DOI: https://doi.org/10.1016/j.envint.2020.106041.
  9. Liu, A.; Qu, G.; Yu, M.; Liu, Y.; Shi, J.; Jiang, G. Tetrabromobisphenol A/S and Nine Novel Analogs in Biological Samples from the Chinese Bohai Sea: Implications for Trophic Transfer. Environ. Sci. Technol. 2016, 50 (8), 4203–4211. DOI: https://doi.org/10.1021/acs.est.5b06043.
  10. Yang, Y.; et al. Identification and Occurrence of TBBPA and Its Debromination and O-Methylation Transformation Products in Sediment, Fish and Whelks from a Typical E-Waste Dismantling Site. Sci. Total Environ. 2022, 833, 155249. DOI: https://doi.org/10.1016/j.scitotenv.2022.155249.

Biography

Gaëlle Spileers is PhD research student at Ghent University, Belgium