Standard model of electromagnetism and chirality in crystals
R. Winkler, U. Z\"ulicke

TL;DR
This paper develops a comprehensive symmetry-based theory of electromagnetism and chirality in crystalline solids, classifying all magnetic point groups and linking them to physical properties and electronic band structures.
Contribution
It introduces a novel classification of multipole polarizations and chiralities in crystals, extending traditional notions and systematically categorizing all magnetic point groups.
Findings
Classification of 122 magnetic point groups into 12 types.
Identification of characteristic features in electronic band structures.
Explicit formalism linking symmetry categories to physical properties.
Abstract
We present a general, systematic theory of electromagnetism and chirality in crystalline solids. Symmetry is its basic guiding principle, enabling us to consider macroscopic multipole densities without reference to any specific microscopic configurations. We use a formal analogy between space inversion and time inversion to identify two complementary, comprehensive classifications of crystals, based on five categories of electric and magnetic multipole order--called polarizations--and five categories of chirality. The five categories of polarizations (parapolar, electropolar, magnetopolar, antimagnetopolar, and multipolar) embody the ways in which electromagnetic multipole order can be realized in solids, thus expanding the familiar notion of electric dipolarization in ferroelectrics and magnetization in ferromagnets to higher-order multipole densities. The five categories…
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Taxonomy
TopicsOptical and Acousto-Optic Technologies
