4.5 Article

Misfit Dislocation Guided Topographic and Conduction Patterning in Complex Oxide Epitaxial Thin Films

Journal

ADVANCED MATERIALS INTERFACES
Volume 3, Issue 14, Pages -

Publisher

WILEY
DOI: 10.1002/admi.201600106

Keywords

complex oxides; misfit dislocations; strain; surface current; surface patterning

Funding

  1. Spanish MINECO [SEV- 2015-0496, MAT2015-71664-R, MAT2012-33207, MAT2013-47869-C4-1-P]
  2. European Union Horizon 2020 research and innovation program [645658]
  3. Generalitat de Catalunya [2014 SGR 501]
  4. European Union Seventh Framework Programme [312483-ESTEEM2]
  5. Labex (Excellence Laboratory) NEXT
  6. Ministry of Education, Science, and Technological Development of the Republic of Serbia [III45018]

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Interfacial dissimilarity has emerged in recent years as the cornerstone of emergent interfacial phenomena, while enabling the control of electrical transport and magnetic behavior of complex oxide epitaxial films. As a step further toward the lateral miniaturization of functional nanostructures, this work uncovers the role of misfit dislocations in creating periodic surface strain patterns that can be efficiently used to control the spatial modulation of mass transport phenomena and bandwidth-dependent properties on a approximate to 20 nm length scale. The spontaneous formation of surface strain-relief patterns in La0.7Sr0.3MnO3/LaAlO3 films results in lateral periodic modulations of the surface chemical potential and tetragonal distortion, controlling the spatial distribution of preferential nucleation sites and the bandwidth of the epilayer, respectively. These results provide insights into the spontaneous formation of strain-driven ordered surface patterns, topographic and functional, during the growth of complex oxide heterostructures on lengths scales far below the limits achievable through top-down approaches.

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