Impact of Mg <sup>2+</sup> and pH on amorphous calcium carbonate nanoparticle formation: Implications for biomineralization and ocean acidification

L Lucas Kuhrts (Department of Materials Science and Engineering) H Hadar Shaked (Department of Materials Science and Engineering) J Johanna Sklar (Department of Materials Science and Engineering) E Elena Prudnikov (Department of Materials Science and Engineering) S Sylvain Prévost (Instrument Responsible D11, Institut Max von Laue − Paul Langevin (ILL), 71, Avenue Des Martyrs − CS 20156, 38042 Grenoble, Cedex 9, France) G Gouranga Manna (European Synchrotron Radiation Facility) M Michael Sztucki (European Synchrotron Radiation Facility) A Alexander Katsman (Department of Materials Science and Engineering) B Boaz Pokroy (Department of Materials Science and Engineering, Technion - Israel Institute of Technology)

Abstract

Crystallization by amorphous calcium carbonate (ACC) particle attachment (CPA) is a prevalent biomineralization mechanism among calcifying organisms. A narrow, controlled size distribution of ACC nanoparticles is essential for macroscopic crystal formation via CPA. Using in situ synchrotron small-angle X-ray scattering, we demonstrate that synthetic magnesium-stabilized ACC (Mg-ACC) nanoparticles form with an exceptionally narrow size distribution near the spinodal line during liquid–liquid phase separation. We monitored ACC formation kinetics at pH 8.4 to 8.9 and Mg 2 + contents of 50 to 80%, observing a 2-order magnitude rise in nucleation kinetics for a 0.1 pH increase and a 6-order magnitude rise for a 10% Mg 2 + decrease. Within the binodal region, faster nucleation kinetics result in more monodisperse particles, narrowing the particle size distribution by factors of 2 for a pH increase of merely 0.1 and by a factor of 3 for a 10% Mg 2 + decrease. While the influence of Mg 2 + on calcite biomineralization is well studied, its effect on Mg-ACC formation and particle size distribution-an essential parameter in CPA-based biomineralization pathways-remained unexplored. These findings highlight the delicate interplay of pH and Mg 2 + in controlling the kinetics and thermodynamics of Mg-ACC formation, significantly impacting particle size distribution.

Article Details

Volume / Issue Vol. 122, Issue 19
Published May 13, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (9)

L

Lucas Kuhrts

Department of Materials Science and Engineering

H

Hadar Shaked

Department of Materials Science and Engineering

J

Johanna Sklar

Department of Materials Science and Engineering

E

Elena Prudnikov

Department of Materials Science and Engineering

S

Sylvain Prévost

Instrument Responsible D11, Institut Max von Laue − Paul Langevin (ILL), 71, Avenue Des Martyrs − CS 20156, 38042 Grenoble, Cedex 9, France

G

Gouranga Manna

European Synchrotron Radiation Facility

M

Michael Sztucki

European Synchrotron Radiation Facility

A

Alexander Katsman

Department of Materials Science and Engineering

B

Boaz Pokroy

Department of Materials Science and Engineering, Technion - Israel Institute of Technology