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1.
Kardiologiia ; 63(5): 27-32, 2023 May 31.
Article Ru | MEDLINE | ID: mdl-37307205

Aim      Comparative analysis of the effectiveness of a new approach, "SMART rehabilitation of patients after heart valve replacement", which includes, in addition to face-to-face training, Internet technologies in the form of video conferencing, the mobile application "Calculation of the warfarin dose", and a traditional program for educating patients after correction of valvular defects.Material and methods  The study included 190 patients with prosthetic heart valves. The main group consisted of 98 patients who completed a distance learning course. The control group included 92 patients participating in face-to-face training. Clinical and instrumental examinations (electrocardiography, echocardiography, determination of international normalized ratio (INR)), and surveys to evaluate awareness, compliance with treatment, and quality of life (QoL) were performed.Results At baseline, the awareness, compliance and QoL did not differ between the compared groups. After 6-month follow-up, the mean score of awareness increased by 53.6 % (р=0.0001). The compliance with treatment increased 3.3 times in the main group and 1.7 times in the control group (p=0.0247). Patients of the main group were more prone to self-management (p=0.0001), had better medical and social awareness (p=0.0335), medical and social communicability (p=0.0392), confidence in the therapeutic strategy of the attending physician (p=0.0001), and treatment effectiveness (p=0.0057). Analysis of QoL showed increases in living activity 2.1 times (р=0.0001), social functioning 1.6 times (р=0.0001), and mental health 1.9 times (р=0.0001).Conclusion      The novel approach of distance learning, "SMART rehabilitation of patients after heart valve replacement", provides improvements in awareness, compliance with treatment and QoL.


Heart Valve Diseases , Heart Valve Prosthesis , Humans , Quality of Life , Echocardiography , Electrocardiography
2.
J Phys Condens Matter ; 33(41)2021 Aug 05.
Article En | MEDLINE | ID: mdl-33662946

Magnonics is a budding research field in nanomagnetism and nanoscience that addresses the use of spin waves (magnons) to transmit, store, and process information. The rapid advancements of this field during last one decade in terms of upsurge in research papers, review articles, citations, proposals of devices as well as introduction of new sub-topics prompted us to present the first roadmap on magnonics. This is a collection of 22 sections written by leading experts in this field who review and discuss the current status besides presenting their vision of future perspectives. Today, the principal challenges in applied magnonics are the excitation of sub-100 nm wavelength magnons, their manipulation on the nanoscale and the creation of sub-micrometre devices using low-Gilbert damping magnetic materials and its interconnections to standard electronics. To this end, magnonics offers lower energy consumption, easier integrability and compatibility with CMOS structure, reprogrammability, shorter wavelength, smaller device features, anisotropic properties, negative group velocity, non-reciprocity and efficient tunability by various external stimuli to name a few. Hence, despite being a young research field, magnonics has come a long way since its early inception. This roadmap asserts a milestone for future emerging research directions in magnonics, and hopefully, it will inspire a series of exciting new articles on the same topic in the coming years.

3.
ACS Nano ; 14(11): 14960-14970, 2020 Nov 24.
Article En | MEDLINE | ID: mdl-33152236

Magnetic skyrmions are stable spin textures with quasi-particle behavior and attract significant interest in fundamental and applied physics. The metastability of magnetic skyrmions at zero magnetic field is particularly important to enable, for instance, a skyrmion racetrack memory. Here, the results of the nucleation of stable skyrmions and formation of ordered skyrmion lattices by magnetic force microscopy in (Pt/CoFeSiB/W)n multilayers, exploiting the additive effect of the interfacial Dzyaloshinskii-Moriya interaction, are presented. The appropriate conditions under which skyrmion lattices are confined with a dense two-dimensional liquid phase are identified. A crucial parameter to control the skyrmion lattice characteristics and the number of scans resulting in the complete formation of a skyrmion lattice is the distance between two adjacent scanning lines of a magnetic force microscopy probe. The creation of skyrmion patterns with complex geometry is demonstrated, and the physical mechanism of direct magnetic writing of skyrmions is comprehended by micromagnetic simulations. This study shows a potential of a direct-write (maskless) skyrmion (topological) nanolithography with sub-100 nm resolution, where each skyrmion acts as a pixel in the final topological image.

4.
Phys Rev Lett ; 124(15): 157202, 2020 Apr 17.
Article En | MEDLINE | ID: mdl-32357040

Interfacial Dzyaloshinskii-Moriya interaction (DMI) is experimentally investigated in Pt/Co/Pt multilayer films under strain. A strong variation (from 0.1 to 0.8 mJ/m^{2}) of the DMI constant is demonstrated at ±0.1% in-plane uniaxial deformation of the films. The anisotropic strain induces strong DMI anisotropy. The DMI constant perpendicular to the strain direction changes sign, while the constant along the strain direction does not. Estimates show that the DMI can be controlled with an electric field in hybrid ferroelectric-ferromagnetic systems. So, the observed effect opens the way to control the DMI and eventually skyrmions with a voltage via a strain-mediated magnetoelectric coupling.

5.
Phys Rev Lett ; 120(25): 257203, 2018 Jun 22.
Article En | MEDLINE | ID: mdl-29979084

We observe and explain theoretically strain-induced spin-wave routing in the bilateral composite multilayer. By means of Brillouin light scattering and microwave spectroscopy, we study the spin-wave transport across three adjacent magnonic stripes, which are strain coupled to a piezoelectric layer. The strain may effectively induce voltage-controlled dipolar spin-wave interactions. We experimentally demonstrate the basic features of the voltage-controlled spin-wave switching. We show that the spin-wave characteristics can be tuned with an electrical field due to piezoelectricity and magnetostriction of the piezolayer and layered composite and mechanical coupling between them. Our experimental observations agree with numerical calculations.

6.
Sci Rep ; 7(1): 15125, 2017 11 09.
Article En | MEDLINE | ID: mdl-29123144

We have imaged Néel skyrmion bubbles in perpendicularly magnetised polycrystalline multilayers patterned into 1 µm diameter dots, using scanning transmission x-ray microscopy. The skyrmion bubbles can be nucleated by the application of an external magnetic field and are stable at zero field with a diameter of 260 nm. Applying an out of plane field that opposes the magnetisation of the skyrmion bubble core moment applies pressure to the bubble and gradually compresses it to a diameter of approximately 100 nm. On removing the field the skyrmion bubble returns to its original diameter via a hysteretic pathway where most of the expansion occurs in a single abrupt step. This contradicts analytical models of homogeneous materials in which the skyrmion compression and expansion are reversible. Micromagnetic simulations incorporating disorder can explain this behaviour using an effective thickness modulation between 10 nm grains.

7.
Sci Rep ; 5: 8578, 2015 Feb 26.
Article En | MEDLINE | ID: mdl-25716118

Nonlocal spin injection has been recognized as an efficient mechanism for creation of pure spin currents not tied to the electrical charge transfer. Here we demonstrate experimentally that it can induce coherent magnetization dynamics, which can be utilized for the implementation of novel microwave nano-sources for spintronic and magnonic applications. We show that such sources exhibit a small oscillation linewidth and are tunable over a wide frequency range by the static magnetic field. Spatially resolved measurements of the dynamical magnetization indicate a relatively large oscillation area, resulting in a high stability of the oscillation with respect to thermal fluctuations. We propose a simple quasilinear dynamical model that reproduces well the oscillation characteristics.

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