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Alexe, Marin

Publications and source records attributed to Alexe, Marin.

Exotic Materials and Innovative Concepts for Photovoltaics

The current forum issue is related to the contributions to the European Materials Research Society Spring Meeting 2021 (E-MRS), Symposium E "Exotic Materials and Innovative Concepts for Photovoltaics", organized by Thomas Fix, David Ginley, Mutsumi Sugiyama, and Marin Alexe. This symposium was designed to address fundamental and applied research on innovative photovoltaics materials and concepts, as well as device integration. The focus was on nonconventional photovoltaics, or conventional photovoltaics but with a radically new approach.

exotic materials↗

Ferroelectric incommensurate spin crystals

Ferroics, especially ferromagnets, can form complextopological spin structures such as vortices and skyrmions when subjected to particular electrical and mechanical boundary conditions. Simple vortex-like, electric-dipole-based topological structures have been observed in dedicated ferroelectric systems, especially ferroelectric-insulator superlattices such as PbTiO 3 /SrTiO 3 , which was later shown to be a model system owing to its high depolarizing field. To date, the electric dipole equivalent of ordered magnetic spin lattices driven by the Dzyaloshinskii-Moriya interaction (DMi) has not been experimentally observed. Here we examine a domain structure in a single PbTiO 3 epitaxial layer sandwiched between SrRuO 3 electrodes. In this work, we observe periodic clockwise and anticlockwise ferroelectric vortices that are modulated by a second ordering along their toroidal core. The resulting topology, supported by calculations, is a labyrinth-like pattern with two orthogonal periodic modulations that form an incommensurate polar crystal that provides a ferroelectric analogue to the recently discovered incommensurate spin crystals in ferromagnetic materials. These findings further blur the border between emergent ferromagnetic and ferroelectrictopologies, clearing the way for experimental realization of further electric counterparts of magnetic DMi-driven phases.

71 CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSIC↗