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Perovskite ferroelectric oxides are usually considered to be brittle materials, however, recent work [Dong et al., Science 366, 475 (2019)] demonstrated the super-elasticity in the freestanding BaTiO3 thin films. This property may originate…

材料科学 · 物理学 2020-04-15 Changqing Guo , Guohua Dong , Ziyao Zhou , Ming Liu , Houbing Huang , Jiawang Hong , Xueyun Wang

TbMnO$_{3}$ films have been grown under compressive strain on (001)-oriented SrTiO$_{3}$ crystals. They have an orthorhombic structure and display the (001) orientation. With increasing thickness, the structure evolves from a more symmetric…

We report on domain pattern transfer from a ferroelectric BaTiO$_{\mathrm{3}}$ substrate with a $(111)$-orientation of the surface to an epitaxial Co film grown on a Pd buffer layer. Spatially modulated interfacial strain transfer from…

材料科学 · 物理学 2021-11-12 Kévin J. A. Franke , Colin Ophus , Andreas K. Schmid , Christopher H. Marrows

Ferroelectric domains were investigated using piezoresponse force microscopy in superlattices composed of multiferroic BiFeO3 and SrTiO3 layers. Compared to single BiFeO3 thin films, a reduction in the domains size and a suppression of the…

Domain walls are of increasing interest in ferroelectrics because of their unique properties and potential applications in future nanoelectronics. However, the thickness of ferroelastic domain walls remains elusive due to the challenges in…

材料科学 · 物理学 2021-03-30 Mingqiang Li , Xiaomei Li , Yuehui Li , Heng-Jui Liu , Ying-Hao Chu , Peng Gao

Epitaxial strain can be used to modify the properties of ferroelectric thin films. From the experimental viewpoint, the challenge is to fine-tune the magnitude of the strain. We illustrate how, by using a suitable combination of composition…

材料科学 · 物理学 2015-05-20 Gijsbert Rispens , Jeroen A. Heuver , Beatriz Noheda

We describe the directional growth of ferroelectric domains in a multiferroic BiFeO3 thin film, which was grown epitaxially on a vicinal (001) SrTiO3 substrate. A detailed structural analysis of the film shows that a strain gradient, which…

介观与纳米尺度物理 · 物理学 2015-05-14 T. H. Kim , S. -H. Baek , S. M. Yang , S. Y. Jang , D. Ortiz , T. K. Song , J. -S. Chung , C. -B. Eom , T. W. Noh , J. -G. Yoon

The strain dependent functional properties of epitaxial transition metal oxide films can be significantly modified via substrate selection. However, large lattice mismatches preclude dislocation-free epitaxial growth on ferroelectric…

The ferroelectric domain pattern within lithographically defined PbTiO3/SrTiO3 ferroelectric/dielectric heteroepitaxial superlattice nanostructures is strongly influenced by the edges of the structures. Synchrotron x-ray nanobeam…

介观与纳米尺度物理 · 物理学 2020-02-26 J. Park , J. Mangeri , Q. Zhang , M. H. Yusuf , A. Pateras , M. Dawber , M. V. Holt , O. G. Heinonen , S. Nakhmanson , P. G. Evans

Multiferroic BiFeO3 epitaxial films with thickness ranging from 40 nm to 960 nm were grown by pulsed laser deposition on SrTiO3 (001) substrates with SrRuO3 bottom electrodes. X-ray characterization shows that the structure evolves from…

材料科学 · 物理学 2009-11-13 Dae Ho Kim , Ho Nyung Lee , Michael D. Biegalski , Hans M. Christen

A thermodynamic theory is developed for dense laminar domain structures in epitaxial ferrolectric films. It is found that, at some critical misfit strain between the film and substrate, the 90 degrees c/a/c/a domain structure becomes…

材料科学 · 物理学 2009-10-31 N. A. Pertsev , V. G. Koukhar

We investigate nanoscale domain engineering via epitaxial coupling in a set of SrRuO$_3$/PbTiO$_3$/SrRuO$_3$ heterostructures epitaxially grown on (110)$_o$-oriented DyScO$_3$ substrates. The SrRuO$_3$ layer thickness is kept at 55 unit…

We report observation of 90-degree ferroelectric domain structures in transmission electron microscopy (TEM) of epitaxially-grown films of PbTiO3. Using molecular dynamics (MD) simulations based on first-principles effective Hamiltonian of…

We study cubic ferroelectrics films that become uniaxial with a polar axis perpendicular to the film because of a misfit strain due to a substrate. The main present result is the analytical account for the elastic anisotropy as well as the…

介观与纳米尺度物理 · 物理学 2015-05-27 A. M. Bratkovsky , A. P. Levanyuk

The structural evolution of a polydomain ferroelectric Pb(Zr0.2Ti0.8)O3 film was studied by temperature dependent X-ray diffraction. Two critical temperatures were evidenced: T*=740K, corresponding to a change in the domain structure…

Domain structures of 320 nm thin epitaxial films of ferroelectric PbTiO3 grown by MOCVD technique in identical conditions on SmScO3 and TbScO3 perovskite sub- strates have been investigated by Raman spectroscopy and piezoresponse force…

材料科学 · 物理学 2015-06-15 F. Borodavka , I. Gregora , A. Bartasyte , S. Margueron , V. Plausinaitiene , A. Abrutis , J. Hlinka

Ferroelectric domains in PbTiO$_3$/SrTiO$_3$ superlattices were studied using synchrotron X-ray diffraction. Macroscopic measurements revealed a change in the domain wall orientation from $\left\lbrace 100 \right\rbrace $ to $\left\lbrace…

介观与纳米尺度物理 · 物理学 2018-02-13 Marios Hadjimichael , Edoardo Zatterin , Stéphanie Fernandez-Peña , Steven J. Leake , Pavlo Zubko

The lattice strain and domain switching behaviour was investigated as a function of cyclic field and grain orientation for a pseudorhombohedral composition of the high Curie point piezoelectric system xBiScO3 - (1-x)PbTiO3 (x = 0.40) by…

材料科学 · 物理学 2015-08-05 Lalitha KV , Chris M. Fancher , Jacob L. Jones , Rajeev Ranjan

To minimize their electrostatic energy, insulating ferroelectric films tend to break up into nanoscale ``Kittel'' domains of opposite polarization that are separated by uncharged 180$^\circ$ domain walls. Here, I report on self-consistent…

介观与纳米尺度物理 · 物理学 2022-10-14 W. A. Atkinson

We have analyzed the morphology of ferroelectric domains in very thin films of multiferroic BiFeO3. Unlike the more common stripe domains observed in thicker films BiFeO3 or in other ferroics, the domains tend not to be straight, but…

材料科学 · 物理学 2009-11-13 G. Catalan , H. Bea , S. Fusil , M. Bibes , P. Paruch , A. Barthelemy , J. F. Scott
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