Chiral structures of electric polarization vectors quantified by X-ray resonant scattering

Author:

Kim Kook Tae,McCarter Margaret R.,Stoica Vladimir A.ORCID,Das Sujit,Klewe Christoph,Donoway Elizabeth P.,Burn David M.ORCID,Shafer PadraicORCID,Rodolakis FannyORCID,Gonçalves Mauro A. P.ORCID,Gómez-Ortiz FernandoORCID,Íñiguez JorgeORCID,García-Fernández PabloORCID,Junquera JavierORCID,Susarla SandhyaORCID,Lovesey Stephen W.,van der Laan GerritORCID,Park Se YoungORCID,Martin Lane W.ORCID,Freeland John W.ORCID,Ramesh RamamoorthyORCID,Lee Dong RyeolORCID

Abstract

AbstractResonant elastic X-ray scattering (REXS) offers a unique tool to investigate solid-state systems providing spatial knowledge from diffraction combined with electronic information through the enhanced absorption process, allowing the probing of magnetic, charge, spin, and orbital degrees of spatial order together with electronic structure. A new promising application of REXS is to elucidate the chiral structure of electrical polarization emergent in a ferroelectric oxide superlattice in which the polarization vectors in the REXS amplitude are implicitly described through an anisotropic tensor corresponding to the quadrupole moment. Here, we present a detailed theoretical framework and analysis to quantitatively analyze the experimental results of Ti L-edge REXS of a polar vortex array formed in a PbTiO3/SrTiO3 superlattice. Based on this theoretical framework, REXS for polar chiral structures can become a useful tool similar to x-ray resonant magnetic scattering (XRMS), enabling a comprehensive study of both electric and magnetic REXS on the chiral structures.

Funder

National Research Foundation of Korea

the Quantum Materials program from the Office of Basic Energy Sciences, US Department of Energy

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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