Literature DB >> 29970423

Ferroelectric domain wall dynamics characterized with X-ray photon correlation spectroscopy.

Semën Gorfman1, Alexei A Bokov2,3, Arman Davtyan4, Mario Reiser4,5, Yujuan Xie6,3, Zuo-Guang Ye2,3, Alexey V Zozulya5, Michael Sprung7, Ullrich Pietsch4, Christian Gutt4.   

Abstract

Technologically important properties of ferroic materials are determined by their intricate response to external stimuli. This response is driven by distortions of the crystal structure and/or by domain wall motion. Experimental separation of these two mechanisms is a challenging problem which has not been solved so far. Here, we apply X-ray photon correlation spectroscopy (XPCS) to extract the contribution of domain wall dynamics to the overall response. Furthermore, we show how to distinguish the dynamics related to the passing of domain walls through the periodic (Peierls) potential of the crystal lattice and through the random potential caused by lattice defects (pinning centers). The approach involves the statistical analysis of correlations between X-ray speckle patterns produced by the interference of coherent synchrotron X-rays scattered from different nanosize volumes of the crystal and identification of Poisson-type contribution to the statistics. We find such a contribution in the thermally driven response of the monoclinic phase of a ferroelectric PbZr0.55Ti0.45O3 crystal and calculate the number of domain wall jumps in the studied microvolume.

Entities:  

Keywords:  PZT; X-ray photon correlation spectroscopy; domain walls; ferroelectrics; speckle patterns

Year:  2018        PMID: 29970423      PMCID: PMC6055152          DOI: 10.1073/pnas.1720991115

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  14 in total

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10.  Local manifestations of a static magnetoelectric effect in nanostructured BaTiO3-BaFe12O9 composite multiferroics.

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2.  Infrared nano-spectroscopy of ferroelastic domain walls in hybrid improper ferroelectric Ca3Ti2O7.

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