English

A Crystallographic Metric for Continuous Quantification of Unit Cell Deformation

Materials Science 2025-08-05 v1

Abstract

Describing the deviation of a real structure from a hypothetical higher-symmetry ideal can be a powerful tool to understand and interpret phase transitions. Here we introduce a simple yet effective metric that quantifies the degree of unit cell distortion relative to a cube, called the cubic deviation metric. This enables continuous comparisons between unit cells of different geometries. We demonstrate the potential of this tool with four separate case study applications to real material systems: 1) discontinuous structural phase transitions in pseudobrookites; 2) homological structure classification; 3) structure-correlated piezoelectricity in hexagonal materials; and 4) superconducting materials design in the cuprate family. Although this metric does not replace detailed structural or group theory analysis, it enables comparison across different compositional and structural compound variants, even in the presence of disorder or absence of group-subgroup correlation.

Keywords

Cite

@article{arxiv.2508.01177,
  title  = {A Crystallographic Metric for Continuous Quantification of Unit Cell Deformation},
  author = {Shannon Bernier and Gregory Bassen and Matthew Brem and Davor Tolj and Quentin Simmons and Tyrel M. McQueen},
  journal= {arXiv preprint arXiv:2508.01177},
  year   = {2025}
}

Comments

33 pages including Apprendix, 14 figures, submitted to the Journal of Applied Crystallography

R2 v1 2026-07-01T04:30:33.194Z