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Real-space Imaging of Periodic Nano-Textures in Epitaxial Ca­<sub>2</sub>RuO<sub>4</sub> Thin Films via Inversion of Diffraction Data

ORAL

Abstract

Coherent X-ray diffraction imaging (CXDI) is a lensless imaging technique by directly inverting the oversampled diffraction pattern into real-space images. Because of its non-destructive nature and ability to image sub-picometer atomic-lattice displacements with nanometer resolutions, CXDI has been applied to visualize biological cells, strain in nanocrystals, and recently operando changes in energy materials. Yet, it is limited to objects spatially confined in all three dimensions. Here, we will demonstrate the extension of CXDI to mapping periodic lattice distortions in an extended object. By combining the conventional CXDI iterative computation and an unsupervised machine learning clustering algorithm, we imaged the periodic nanotextures in epitaxially strained Ca2RuO4 thin films grown on LaAlO3 substrate via the inversion of its diffraction pattern. The result reveals the formation of striped periodic nanodomains during the Ca2RuO4 structural L-Pbca to S-Pbca phase transition upon cooling, which is confirmed by cryogenic scanning transmission electron microscopy. Our model-independent imaging approach promises to facilitate the understanding of low-dimensional quantum materials where periodic nano-textures are ubiquitous.

Presenters

  • Ziming Shao

    Cornell University

Authors

  • Ziming Shao

    Cornell University

  • Noah Schnitzer

    Cornell University

  • Jacob Ruf

    Max Planck Institute for Chemical Physics of Solids

  • Oleg Gorobtsov

    Cornell University

  • Berit H Goodge

    Cornell University

  • Hari P Nair

    Cornell University

  • Jacob Ruff

    CHESS, Cornell University

  • Darrell G Schlom

    Cornell University, Department of Materials Science and Engineering, Cornell University, Ithaca, New York 14853, USA, Department of Materials Science and Engineering, Cornell University

  • Kyle M Shen

    Cornell University

  • Lena F Kourkoutis

    Cornell University, School of Applied and Engineering Physics, Cornell University

  • Andrej Singer

    Cornell University