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Geometrically-frustrated interactions drive structural complexity in amorphous calcium carbonate

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arxiv 2303.06178 v1 pith:IN2CQUNV submitted 2023-03-10 cond-mat.mtrl-sci

Geometrically-frustrated interactions drive structural complexity in amorphous calcium carbonate

classification cond-mat.mtrl-sci
keywords amorphouscarbonateboldsymbolcalciumcomplexityeffectivegeometrically-frustratedinteractions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Amorphous calcium carbonate (ACC) is an important precursor for biomineralisation in marine organisms. Among the key outstanding problems regarding ACC are how best to understand its structure and how to rationalise its metastability as an amorphous phase. Here, we report high-quality atomistic models of ACC generated by using state-of-the-art interatomic potentials to help guide fits to X-ray total scattering data. Exploiting a recently-developed inversion approach, we extract from these models the effective Ca$\boldsymbol\cdots$Ca interaction potential governing ACC formation. This potential contains minima at two competing distances, corresponding to the two different ways in which carbonate ions bridge Ca$^{2+}$-ion pairs. We reveal an unexpected mapping to the Lennard-Jones--Gauss (LJG) model normally studied in the context of computational soft-matter, with the empirical LJG parameters for ACC taking values known to promote structural complexity. In this way we show that both the complex structure of ACC and its resilience to crystallisation are actually encoded in the geometrically-frustrated effective interactions between Ca$^{\boldsymbol 2+}$ ions.

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