| Literature DB >> 33854251 |
Qian Li1,2, Vladimir A Stoica1,3, Marek Paściak4, Yi Zhu1, Yakun Yuan3, Tiannan Yang3, Margaret R McCarter5, Sujit Das5, Ajay K Yadav5, Suji Park6,7, Cheng Dai3, Hyeon Jun Lee8, Youngjun Ahn8, Samuel D Marks8, Shukai Yu3, Christelle Kadlec4, Takahiro Sato9, Matthias C Hoffmann9, Matthieu Chollet9, Michael E Kozina9, Silke Nelson9, Diling Zhu9, Donald A Walko1, Aaron M Lindenberg6,10, Paul G Evans8, Long-Qing Chen3, Ramamoorthy Ramesh5,11,12, Lane W Martin5,12, Venkatraman Gopalan3, John W Freeland1, Jirka Hlinka4, Haidan Wen13.
Abstract
The collective dynamics of topological structures1-6 are of interest from both fundamental and applied perspectives. For example, studies of dynamical properties of magnetic vortices and skyrmions3,4 have not only deepened our understanding of many-body physics but also offered potential applications in data processing and storage7. Topological structures constructed from electrical polarization, rather than electron spin, have recently been realized in ferroelectric superlattices5,6, and these are promising for ultrafast electric-field control of topological orders. However, little is known about the dynamics underlying the functionality of such complex extended nanostructures. Here, using terahertz-field excitation and femtosecond X-ray diffraction measurements, we observe ultrafast collective polarization dynamics that are unique to polar vortices, with orders-of-magnitude higher frequencies and smaller lateral size than those of experimentally realized magnetic vortices3. A previously unseen tunable mode, hereafter referred to as a vortexon, emerges in the form of transient arrays of nanoscale circular patterns of atomic displacements, which reverse their vorticity on picosecond timescales. Its frequency is considerably reduced (softened) at a critical strain, indicating a condensation (freezing) of structural dynamics. We use first-principles-based atomistic calculations and phase-field modelling to reveal the microscopic atomic arrangements and corroborate the frequencies of the vortex modes. The discovery of subterahertz collective dynamics in polar vortices opens opportunities for electric-field-driven data processing in topological structures with ultrahigh speed and density.Entities:
Year: 2021 PMID: 33854251 DOI: 10.1038/s41586-021-03342-4
Source DB: PubMed Journal: Nature ISSN: 0028-0836 Impact factor: 49.962