AI Article Synopsis

  • Chirality, or handedness, is an important factor in discovering new electronic properties in materials for quantum information science, often found in natural biomolecules and magnetic materials.
  • Researchers engineered chirality in a specific ferroelectric/dielectric system using advanced techniques like four-dimensional scanning transmission electron microscopy (4D-STEM) to analyze three-dimensional domain walls and their interactions.
  • The unique characteristics of these domain walls, influenced by local polarization and symmetry-breaking, lead to the formation of triple points, which could enhance electrostatic and magnetic properties relevant for quantum sensing technologies.

Article Abstract

Chirality or handedness of a material can be used as an order parameter to uncover the emergent electronic properties for quantum information science. Conventionally, chirality is found in naturally occurring biomolecules and magnetic materials. Chirality can be engineered in a topological polar vortex ferroelectric/dielectric system via atomic-scale symmetry-breaking operations. We use four-dimensional scanning transmission electron microscopy (4D-STEM) to map out the topology-driven three-dimensional domain walls, where the handedness of two neighbor topological domains change or remain the same. The nature of the domain walls is governed by the interplay of the local perpendicular (lateral) and parallel (axial) polarization with respect to the tubular vortex structures. Unique symmetry-breaking operations and the finite nature of domain walls result in a triple point formation at the junction of chiral and achiral domain walls. The unconventional nature of the domain walls with triple point pairs may result in unique electrostatic and magnetic properties potentially useful for quantum sensing applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10368707PMC
http://dx.doi.org/10.1038/s41467-023-40009-2DOI Listing

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