Spin Spirals And Charge Textures In Transition Metal Oxide Heterostructures

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Spin Spirals and Charge Textures in Transition-Metal-Oxide Heterostructures

Spin Spirals and Charge Textures in Transition-Metal-Oxide Heterostructures
Author :
Publisher : Springer
Total Pages : 162
Release :
ISBN-10 : 9783319070704
ISBN-13 : 3319070703
Rating : 4/5 (703 Downloads)

Book Synopsis Spin Spirals and Charge Textures in Transition-Metal-Oxide Heterostructures by : Alex Frano

Download or read book Spin Spirals and Charge Textures in Transition-Metal-Oxide Heterostructures written by Alex Frano and published by Springer. This book was released on 2014-05-28 with total page 162 pages. Available in PDF, EPUB and Kindle. Book excerpt: This thesis presents the results of resonant and non-resonant x-ray scattering experiments demonstrating the control of collective ordering phenomena in epitaxial nickel-oxide and copper-oxide based superlattices. Three outstanding results are reported: (1) LaNiO3-LaAlO3 superlattices with fewer than three consecutive NiO2 layers exhibit a novel spiral spin density wave, whereas superlattices with thicker nickel-oxide layer stacks remain paramagnetic. The magnetic transition is thus determined by the dimensionality of the electron system. The polarization plane of the spin density wave can be tuned by epitaxial strain and spatial confinement of the conduction electrons. (2) Further experiments on the same system revealed an unusual structural phase transition controlled by the overall thickness of the superlattices. The transition between uniform and twin-domain states is confined to the nickelate layers and leaves the aluminate layers unaffected. (3) Superlattices based on the high-temperature superconductor YBa2Cu3O7 exhibit an incommensurate charge density wave order that is stabilized by heterointerfaces. These results suggest that interfaces can serve as a powerful tool to manipulate the interplay between spin order, charge order, and superconductivity in cuprates and other transition metal oxides.


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