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DOE OSTI · 1806304

Vortex Domain Walls in Ferroelectrics

Abstract

Controlling the domain formation in ferroelectric materials at the nanoscale is a fertile ground to explore emergent phenomena and their technological prospects. For example, charged ferroelectric domain walls in BiFeO 3 and ErMnO 3 exhibit significantly enhanced conductivity which could serve as the foundation for next-generation circuits. In this work, we describe a concept in which polar vortices perform the same role as a ferroelectric domain wall in classical domain structures with the key difference being that the polar vortices can accommodate charged (i.e., head-to-head and tail-to-tail) domains, for example, in ferroelectric PbTiO 3 /dielectric SrTiO 3 superlattices. Such a vortex domain wall structure can be manipulated in a reversible fashion under an external applied field.

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BibTeXRIS

Hong, Zijian, Das, Sujit, Nelson, Christopher, Yadav, Ajay, Wu, Yongjun, Junquera, Javier, Chen, Long-Qing, Martin, Lane W., Ramesh, Ramamoorthy. 2021-04-19. Vortex Domain Walls in Ferroelectrics. https://doi.org/10.1021/acs.nanolett.1c00404

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36 MATERIALS SCIENCE↗