Post-regeneration neutralization enables stable phosphate adsorption-desorption in Ca- and NOM-rich waters

Journal Article (2026)
Author(s)

Yuwei Huang (Wetsus, European Centre of Excellence for Sustainable Water Technology, TU Delft - Civil Engineering & Geosciences)

Carlo Belloni (Wetsus, European Centre of Excellence for Sustainable Water Technology)

Leon Korving (Wetsus, European Centre of Excellence for Sustainable Water Technology)

Iulian A. Dugulan (TU Delft - Applied Sciences, TU Delft - RID/TS/Instrumenten groep)

Niels H. van Dijk (TU Delft - Applied Sciences)

Doris van Halem (TU Delft - Civil Engineering & Geosciences)

Research Group
Sanitary Engineering
DOI related publication
https://doi.org/10.1016/j.watres.2026.126731 Final published version
More Info
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Publication Year
2026
Language
English
Research Group
Sanitary Engineering
Journal title
Water Research
Volume number
307
Article number
126731
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Abstract

Residual alkalinity left after alkaline regeneration is a critical yet often overlooked factor controlling the long-term performance of iron-oxide adsorbents for phosphorus (P) removal and recovery. In porous adsorbents, incomplete neutralization can maintain a local alkaline environment, promoting calcium (Ca)-based precipitation and performance deterioration. This study evaluated post-regeneration neutralization of the iron oxide adsorbent GEH in Ca- and natural organic matter (NOM)-containing water matrices. Three neutralization conditions were compared: rapid rinsing, thorough washing, and acid-assisted neutralization. Rapid rinsing and thorough washing left residual alkalinity within GEH, driving Ca-based precipitation and progressive loss of adsorption capacity and regeneration efficiency. In contrast, acid-assisted neutralization largely reduced residual alkalinity, suppressed precipitation, and maintained adsorption-dominated P removal. Under acid-assisted neutralization, GEH sustained stable P removal of 4.51–5.83 mg/g with 88%–96% regeneration efficiency over 12 cycles in Ca- and NOM-containing systems. These findings identify post-regeneration neutralization as a preventive control step for residual alkalinity, rather than a delayed corrective treatment for accumulated precipitates, providing a practical strategy to improve the stability of adsorption-based P removal and recovery.