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1.
Sci Bull (Beijing) ; 65(15): 1260-1267, 2020 Aug 15.
Artigo em Inglês | MEDLINE | ID: mdl-36747413

RESUMO

The ability to control magnetic vortex is critical for their potential applications in spintronic devices. Traditional methods including magnetic field, spin-polarized current etc. have been used to flip the core and/or reverse circulation of vortex. However, it is challenging for deterministic electric-field control of the single magnetic vortex textures with time-reversal broken symmetry and no planar magnetic anisotropy. Here it is reported that a deterministic reversal of single magnetic vortex circulation can be driven back and forth by a space-varying strain in multiferroic heterostructures, which is controlled by using a bi-axial pulsed electric field. Phase-field simulation reveals the mechanism of the emerging magnetoelastic energy with the space variation and visualizes the reversal pathway of the vortex. This deterministic electric-field control of the single magnetic vortex textures demonstrates a new approach to integrate the low-dimensional spin texture into the magnetoelectric thin film devices with low energy consumption.

2.
J Biomater Appl ; 31(5): 721-729, 2016 11.
Artigo em Inglês | MEDLINE | ID: mdl-27485953

RESUMO

An in situ formed hydrogel was synthesized by sodium alginate and cysteine methyl ester, which turned the sodium alginate into thiolated alginate (SA-SH). SA-SH can in situ formed into hydrogel (SA-SS-SA) with a large amount of water through covalent bond in less than 20 s. The structure characterization showed that the mechanism of SA-SH gelation was thiol-disulfide transformation. The rheology and cytotoxicity experiments of SA-SS-SA hydrogel were also investigated, which indicated that SA-SS-SA hydrogel had an appropriate mechanical strength as well as an excellent biocompatibility. The SA-SS-SA hydrogel would degrade under certain conditions after a few days and its mechanism was disulfide alkaline reduction. Finally, the hemostatic property of SA-SH was tested by rat tail amputation experiment. The time to hemostasis of rat reduced from 8.26 min to 3.24 min, which proved that SA-SH had an excellent hemostatic property.


Assuntos
Alginatos/administração & dosagem , Alginatos/síntese química , Hemostasia/efeitos dos fármacos , Hemostáticos/administração & dosagem , Hemostáticos/síntese química , Hidrogéis/síntese química , Animais , Bandagens , Força Compressiva , Ácido Glucurônico/administração & dosagem , Ácido Glucurônico/síntese química , Hemostasia/fisiologia , Ácidos Hexurônicos/administração & dosagem , Ácidos Hexurônicos/síntese química , Hidrogéis/administração & dosagem , Teste de Materiais , Ratos , Compostos de Sulfidrila/administração & dosagem , Compostos de Sulfidrila/síntese química , Resultado do Tratamento , Viscosidade
3.
Nat Commun ; 7: 10636, 2016 Feb 03.
Artigo em Inglês | MEDLINE | ID: mdl-26838483

RESUMO

A controllable ferroelastic switching in ferroelectric/multiferroic oxides is highly desirable due to the non-volatile strain and possible coupling between lattice and other order parameter in heterostructures. However, a substrate clamping usually inhibits their elastic deformation in thin films without micro/nano-patterned structure so that the integration of the non-volatile strain with thin film devices is challenging. Here, we report that reversible in-plane elastic switching with a non-volatile strain of approximately 0.4% can be achieved in layered-perovskite Bi2WO6 thin films, where the ferroelectric polarization rotates by 90° within four in-plane preferred orientations. Phase-field simulation indicates that the energy barrier of ferroelastic switching in orthorhombic Bi2WO6 film is ten times lower than the one in PbTiO3 films, revealing the origin of the switching with negligible substrate constraint. The reversible control of the in-plane strain in this layered-perovskite thin film demonstrates a new pathway to integrate mechanical deformation with nanoscale electronic and/or magnetoelectronic applications.

4.
Adv Mater ; 27(43): 6934-8, 2015 Nov 18.
Artigo em Inglês | MEDLINE | ID: mdl-26421975

RESUMO

A polarization-mediated heterointerface is designed to research the thermal stability of magnetic metal/oxide interfaces. Using polarization engineering, the thermal stability of the interface between BiFeO3 and CoFeB can be improved by about 100°C. This finding provides new insight into the chemistry of the metal/oxide heterointerface.

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