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arXiv · 2601.09192

Entropic Colloidal Crystal Prediction: A Quantum Density Functional Theory Inspired Approach

Abstract

In pursuit of a colloidal analogue to quantum density functional theory (DFT) predictions of atomic crystal structures, we report a new, classical DFT that predicts the relative thermodynamic stability of colloidal crystals of hard, convex particle shapes. In contrast to standard classical DFT approaches, our theory maps the hard particle system to an auxiliary system in which we treat the particles as fixed "nuclei" embedded in a fictitious, spatially varying density field that distributes throughout the auxiliary system. By minimizing the free energy of the auxiliary system, and through comparison with known equations of state and free energy calculations using thermodynamic integration, we show that the auxiliary system with the lowest free energy corresponds to the most probable crystal of hard shapes in the original system.

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Kristi Pepa, Isaac R. Spivack, Trevor F. G. Teague, Ryn Y. Oliphant, Domagoj Fijan, Sharon C. Glotzer. 2026-01-14. Entropic Colloidal Crystal Prediction: A Quantum Density Functional Theory Inspired Approach. https://arxiv.org/abs/2601.09192

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