Anisotropic dislocation-domain wall interactions in ferroelectrics

Author:

Zhuo FangpingORCID,Zhou XiandongORCID,Gao Shuang,Höfling MarionORCID,Dietrich Felix,Groszewicz Pedro B.ORCID,Fulanović Lovro,Breckner Patrick,Wohninsland Andreas,Xu Bai-XiangORCID,Kleebe Hans-Joachim,Tan XiaoliORCID,Koruza Jurij,Damjanovic DraganORCID,Rödel JürgenORCID

Abstract

AbstractDislocations are usually expected to degrade electrical, thermal and optical functionality and to tune mechanical properties of materials. Here, we demonstrate a general framework for the control of dislocation–domain wall interactions in ferroics, employing an imprinted dislocation network. Anisotropic dielectric and electromechanical properties are engineered in barium titanate crystals via well-controlled line-plane relationships, culminating in extraordinary and stable large-signal dielectric permittivity (≈23100) and piezoelectric coefficient (≈2470 pm V–1). In contrast, a related increase in properties utilizing point-plane relation prompts a dramatic cyclic degradation. Observed dielectric and piezoelectric properties are rationalized using transmission electron microscopy and time- and cycle-dependent nuclear magnetic resonance paired with X-ray diffraction. Succinct mechanistic understanding is provided by phase-field simulations and driving force calculations of the described dislocation–domain wall interactions. Our 1D-2D defect approach offers a fertile ground for tailoring functionality in a wide range of functional material systems.

Funder

Deutsche Forschungsgemeinschaft

Alexander von Humboldt-Stiftung

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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