Evidence for liquid-liquid phase separation during the early stages of Mg-struvite formation

Author:

Karafiludis Stephanos12ORCID,Scoppola Ernesto3ORCID,Wolf Stephan E.4ORCID,Kochovski Zdravko5ORCID,Matzdorff David5,Van Driessche Alexander E. S.6ORCID,Hövelmann Jörn7,Emmerling Franziska12ORCID,Stawski Tomasz M.1ORCID

Affiliation:

1. Federal Institute for Materials Research and Testing (BAM) 1 , Richard-Willstatter-Straße 11, 12489 Berlin, Germany

2. Department of Chemistry, Humboldt-Universität zu Berlin 2 , Brook-Taylor-Straße 2, 12489 Berlin, Germany

3. Biomaterials, Hierarchical Structure of Biological and Bio-inspired Materials, Max Planck Institute of Colloids and Interfaces 3 , Potsdam 14476, Germany

4. Friedrich-Alexander University Erlangen-Nürnberg (FAU), Department of Materials Science and Engineering, Institute for Glass and Ceramics 4 , Martensstr. 5, 91058 Erlangen, Germany

5. Helmholtz-Zentrum Berlin for Materials and Energy 5 , Hahn-Meitner Platz 1, 14109 Berlin, Germany

6. Instituto Andaluz de Ciencias de la Tierra (IACT), CSIC – Universidad de Granada 6 , Av. De las Palmeras 4, 18100 Armilla, Spain

7. REMONDIS Production GmbH 7 , Brunnenstraße 138, 44536 Lünen, Germany

Abstract

The precipitation of struvite, a magnesium ammonium phosphate hexahydrate (MgNH4PO4 · 6H2O) mineral, from wastewater is a promising method for recovering phosphorous. While this process is commonly used in engineered environments, our understanding of the underlying mechanisms responsible for the formation of struvite crystals remains limited. Specifically, indirect evidence suggests the involvement of an amorphous precursor and the occurrence of multi-step processes in struvite formation, which would indicate non-classical paths of nucleation and crystallization. In this study, we use synchrotron-based in situ x-ray scattering complemented by cryogenic transmission electron microscopy to obtain new insights from the earliest stages of struvite formation. The holistic scattering data captured the structure of an entire assembly in a time-resolved manner. The structural features comprise the aqueous medium, the growing struvite crystals, and any potential heterogeneities or complex entities. By analysing the scattering data, we found that the onset of crystallization causes a perturbation in the structure of the surrounding aqueous medium. This perturbation is characterized by the occurrence and evolution of Ornstein-Zernike fluctuations on a scale of about 1 nm, suggesting a non-classical nature of the system. We interpret this phenomenon as a liquid-liquid phase separation, which gives rise to the formation of the amorphous precursor phase preceding actual crystal growth of struvite. Our microscopy results confirm that the formation of Mg-struvite includes a short-lived amorphous phase, lasting >10 s.

Funder

Bundesanstalt für Materialforschung und -Prüfung

Helmholtz-Zentrum Berlin für Materialien und Energie

Publisher

AIP Publishing

Subject

Physical and Theoretical Chemistry,General Physics and Astronomy

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