From polyhedra to crystals: a graph-theoretic framework for crystal structure generation

Abstract

Crystal structures can be viewed as assemblies of space-filling polyhedra, which play a critical role in determining material properties such as ionic conductivity and dielectric constant. However, most conventional crystal structure prediction methods rely on random structure generation and do not explicitly incorporate polyhedral tiling, limiting their efficiency and interpretability. In this highlight, we introduced a novel crystal structure generation method based on discrete geometric analysis of polyhedral information. The geometry and topology of space-filling polyhedra are encoded as a dual periodic graph, and the corresponding crystal structure is obtained via the standard realization of this graph. We demonstrate the effectiveness of our approach by reconstructing face-centered cubic (FCC), hexagonal close-packed (HCP), and body-centered cubic (BCC) structures from their dual periodic graphs. This method offers a new pathway for systematically generating crystal structures based on target polyhedra, potentially accelerating the discovery of novel materials for applications in electronics, energy storage, and beyond.

Graphical abstract: From polyhedra to crystals: a graph-theoretic framework for crystal structure generation

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Article information

Article type
Highlight
Submitted
14 Dec 2025
Accepted
04 Jan 2026
First published
18 Mar 2026
This article is Open Access
Creative Commons BY license

CrystEngComm, 2026, Advance Article

From polyhedra to crystals: a graph-theoretic framework for crystal structure generation

T. Yokoyama, K. Ichikawa and H. Naito, CrystEngComm, 2026, Advance Article , DOI: 10.1039/D5CE01176K

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