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Positioning nanostructures and functional molecules at surfaces and engineering their local coupling behavior is a key challenge in nanotechnology.
The evolution of magnetization domains in ferromagnetic thin film subjected to external stresses and magnetic fields are simulated and the magnetoelastic coupling behavior is investigated.
In this model, first, the core and the strands are described as Kirchhoff Love beams and then the traction torsion coupling behavior is taken into account for both of them.
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The effects of system parameters, such as the pitch cone angles, on the coupling behavior are also discussed.
Macro-ferroelectric and magnetoelectric coupling behavior were investigated in detail by non-sintering and pressing for the first time, which is smaller than that of the BTF ceramic or film due to the adverse effects of filled air.
This comparison is to verify that we are in a parameter region where the coupled behavior is truly reciprocal.
First published in 1985, the HKB model of this coupled behavior is one of the most extensively tested quantitative models in human movement [49].
In summary, the local magnetoelectric coupling behaviors were systematically investigated in the multiferroic BLFO polycrystalline thin films.
Moreover, it emphasizes that such coupled behaviors are driven by the two negative feedback loops of C N instead of the complex itself.
Crucially, the relationship between coupling and behavior is seen over both patients and controls, suggesting that the remote effects of lesions on connectivity are functionally (behaviorally) relevant and may reflect compensatory or adaptive changes that are similar to differences among normal subjects.
The coupling with structural behavior is a complex process and will be the topic of another paper.
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Since I tried Ludwig back in 2017, I have been constantly using it in both editing and translation. Ever since, I suggest it to my translators at ProSciEditing.

Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com