Struvite as a Multiphase Catalyst in Radical-Driven Aqueous Transformations: Evidence from Guaiacyl Acetone Photochemistry

Abstract Struvite (NH4MgPO4·6H2O), a wastewater-derived mineral proposed as a slow-release fertilizer, may also influence aqueous photochemical transformations of organic matter. This study investigates the role of struvite in radical-driven reactions using a model system containing guaiacyl acetone (GA), a lignin-derived phenolic compound, and 3,4-dimethoxybenzaldehyde (DMB), a triplet-state photosensitizer. Photochemical experiments using Solar Simulator combined with electron paramagnetic resonance (EPR) spectroscopy and high-performance liquid chromatography – photodiode array detector – electrospray ionization – high-resolution mass spectrometry (HPLC-PDA-ESI HRMS) analysis reveal that struvite microcrystals alter both the radical pool and molecular product distributions. In the presence of struvite, the signal of the 5,5-dimethyl-1-pyrroline N-oxide (DMPO)-trapped hydroxyl radical (DMPO–OH) decreases, while signals corresponding to DMPOX and the DMPO dimer (associated with oxidation and coupling pathways) increase, indicating a redistribution of the radical pool driven by heterogeneous surface interactions. Struvite enhances dimeric product formation, demonstrating its ability to promote coupling reactions. UV–vis optical measurements show a transient ∼5-fold increase in solar-flux-weighted mass absorption coefficients for the GA+DMB+struvite mixture during early irradiation stages, driven primarily by increased dimer formation, followed by a decline to values comparable to the struvite-free system after 120 min of irradiation. HPLC-PDA-ESI HRMS molecular analysis confirms enhanced oligomerization and distinct reaction pathways in the presence of struvite, with evidence for surface-mediated radical coupling and potential contributions from ammonium-derived chemistry. These results demonstrate that struvite acts as an active participant in aqueous photochemistry, modifying radical pathways, promoting formation of light-absorbing products, and transiently altering optical properties. The findings suggest that struvite may play a broader role in controlling the chemical evolution and light absorption of organic matter in natural and engineered aquatic systems.

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Publication Details

Journal
ACS Earth and Space Chemistry
Published
2026-09-28
DOI
https://doi.org/10.1021/acsearthspacechem.6c00189
Primary Topic
Phosphorus and nutrient management
Type
article
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article

Struvite as a Multiphase Catalyst in Radical-Driven Aqueous Transformations: Evidence from Guaiacyl Acetone Photochemistry

Jonas Baltrušaitis, Alexander Laskin, Maria Misovich, Diego Calderon‐Arrieta et al.
ACS Earth and Space Chemistry
Phosphorus and nutrient management
article

Struvite as a Multiphase Catalyst in Radical-Driven Aqueous Transformations: Evidence from Guaiacyl Acetone Photochemistry

Jonas Baltrušaitis, Alexander Laskin, Maria Misovich, Diego Calderon‐Arrieta, Ryan Walter, Hannah Folarin, Robert Blakeslee
article en

Abstract

Abstract Struvite (NH4MgPO4·6H2O), a wastewater-derived mineral proposed as a slow-release fertilizer, may also influence aqueous photochemical transformations of organic matter. This study investigates the role of struvite in radical-driven reactions using a model system containing guaiacyl acetone (GA), a lignin-derived phenolic compound, and 3,4-dimethoxybenzaldehyde (DMB), a triplet-state photosensitizer. Photochemical experiments using Solar Simulator combined with electron paramagnetic resonance (EPR) spectroscopy and high-performance liquid chromatography – photodiode array detector – electrospray ionization – high-resolution mass spectrometry (HPLC-PDA-ESI HRMS) analysis reveal that struvite microcrystals alter both the radical pool and molecular product distributions. In the presence of struvite, the signal of the 5,5-dimethyl-1-pyrroline N-oxide (DMPO)-trapped hydroxyl radical (DMPO–OH) decreases, while signals corresponding to DMPOX and the DMPO dimer (associated with oxidation and coupling pathways) increase, indicating a redistribution of the radical pool driven by heterogeneous surface interactions. Struvite enhances dimeric product formation, demonstrating its ability to promote coupling reactions. UV–vis optical measurements show a transient ∼5-fold increase in solar-flux-weighted mass absorption coefficients for the GA+DMB+struvite mixture during early irradiation stages, driven primarily by increased dimer formation, followed by a decline to values comparable to the struvite-free system after 120 min of irradiation. HPLC-PDA-ESI HRMS molecular analysis confirms enhanced oligomerization and distinct reaction pathways in the presence of struvite, with evidence for surface-mediated radical coupling and potential contributions from ammonium-derived chemistry. These results demonstrate that struvite acts as an active participant in aqueous photochemistry, modifying radical pathways, promoting formation of light-absorbing products, and transiently altering optical properties. The findings suggest that struvite may play a broader role in controlling the chemical evolution and light absorption of organic matter in natural and engineered aquatic systems.

ACS Earth and Space Chemistry
Lehigh University (US), Purdue University West Lafayette (US)
Clean water and sanitation
Openalex Percentile: Top 12%
Phosphorus and nutrient management
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