| Literature DB >> 29459659 |
Zeyu Zhang1,2, Lu You3, Juan Du4, Junling Wang3, Zuanming Jin2, Guohong Ma5, Yuxin Leng6.
Abstract
The interplay among ferroelectric, magnetic and elastic degrees of freedom in multiferroics is the key issues in condensed matters, which has been widely investigated by various methods. Here, using ultrafast two-color pump-probe spectroscopy, the picosecond electron-phonon and spin-lattice coupling process in Dysprosium doped-BiFeO3 (BDFO) films on SrTiO3 (STO) substrate have been investigated systematically. The Dy-doping induced structural transition and magnetic enhancement in BDFO is observed by ultrafast electron-phonon and spin-lattice interaction, respectively. The elastic anomalies in BDFO films are revealed by the photo-induced coherent acoustic phonon. With increasing the Dy doping ratio, the frequencies of the acoustic phonon in the films are modulated, and the phonon transmission coefficient between films and substrate is found to approach unity gradually. The ultrafast observation of the tunability of the ferroelectric, magnetic and the elastic properties in the morphotropic phase boundary of rare-earth doped BFO films provides new insights into the integration of BFO in next-generation high frequency electro-magnetic and electroacoustic devices.Entities:
Year: 2018 PMID: 29459659 PMCID: PMC5818539 DOI: 10.1038/s41598-018-21655-9
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1The diagram of optical transition in BDFO pumped by 3.1 eV femtosecond pulse.
Figure 2The typical pump-probe reflection spectroscopy with pumping fluence of 4 mJ/cm2, the solid red line is bi-exponential fitting (a). Normalized transient reflectivity of BDFO thin films with different Dy doping ratio in time scale of 10 ps (b), and in 100 ps (c). The Dy-doping ratio dependence of fitting time constants for spin-lattice coupling (red dot) and electron-lattice coupling (black dot), respectively (d).
Figure 3The extracted oscillations of BDFO films from their ultrafast transient reflectivity spectroscopy (Fig. 2(c)), with Dy-doping ratio of 0% (a), 5% (b), 10% (c), and 12.5% (d).
Figure 4The fitted acoustic phonon frequency of DBFO films and transmission coefficient between DBFO films and STO substrate with various Dy-doping ratio.