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January 16, 2026PLoS ONE1 citationsOpen Access

Compact high power, medium energy electron accelerator for treatment of per- and polyfluoroalkyl contamination in water

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TSTasha SpohrBAB. AlberdiMDMarc Dirsat

Key Points

  • The central aim is to evaluate the use of a compact SRF photoinjector for delivering required electron beam parameters to degrade PFAS in water.
  • Assessed the feasibility of a high-average-power SRF photoinjector for electron beam generation.
  • Developed a proof-of-concept in-air beamline for dose deposition optimization.
  • Conducted theoretical analysis and computational modeling to identify suitable parameters for PFAS degradation.
  • Identified the ability of the SRF system to achieve necessary dose and dose rate.
  • Established a systematic approach to study the effects of beam conditions on degradation pathways.
  • Demonstrated potential for faster and more effective treatment than conventional methods.

Abstract

Electron beam water treatment (EBWT) is a promising approach for remediating water contaminated with per- and polyfluoroalkyl substances (PFAS). In this study, we assess the feasibility of using a compact, high-average-power superconducting radio-frequency (SRF) photoinjector as a source for delivering the electron beam parameters required to initiate PFAS degradation. Our goals are twofold: first, to determine whether such a system can achieve the necessary dose and dose rate through sufficient beam energy and power; and second, to establish an experimental platform for investigating how different beam conditions affect degradation pathways. We envision a compact and mobile SRF-based accelerator that can be deployed at contamination hotspots - such as the former Berlin airport Tegel - offering significantly faster and potentially more effective treatment than conventional remediation methods. Based on theoretical analysis and computational modeling, we identify the SRF photoinjector at Helmholtz-Zentrum Berlin (HZB) as a suitable R&D platform. To support experimental validation, we developed a proof-of-concept in-air beamline optimized for balancing dose deposition and thermal management. This setup will enable the systematic study of key operational parameters, including dose rate, energy deposition, and thermal stability, under controlled beam conditions.

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Cite This Study

Spohr et al. (2026) studied this question.

synapsesocial.com/papers/6969d4fd940543b977709dbbhttps://doi.org/10.1371/journal.pone.0323581
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