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A. G. Groshev

Publications and source records attributed to A. G. Groshev.

7 recordsLinked to original sources

Effect of thermal fluctuations on topological crossover in the chiral d+id superconducting phase

The effect of thermal fluctuations on the temperature dependence of the topological index C1 of the chiral d+id superconducting phase of a two-dimensional single-band model on a triangular lattice is investigated. Thermal fluctuations are taken into account within the framework of the self-consistent functional-integral theory. It is established that when the nodal points are located far inside (outside) the Fermi contour of the normal phase, thermal fluctuations expand the relative temperature ranges in which the values of the topological index are close to integer values C1=4(-2). This expansion depends both on the value of the topological index and on the magnitude of the effective attraction between the electrons. However, as the nodal points approach the Fermi contour, topological crossovers to new C1 values are observed, which can persist over a wide temperature range. The nature and degree of influence of thermal fluctuations on these crossovers are established. It is assumed that the observed effects may also manifest in the edge state behavior of a similar system with open boundaries.

cond-mat.supr-con↗

Effect of thermal fuctuations on the nontrivial topology of the d+id superconducting phase

The behavior of the topological index, characterizing the properties of superconducting phases of quasi-two-dimensional systems with nontrivial topology, is investigated depending on the temperature and parameters of the effective non-Hermitian Hamiltonian. For this purpose, a method of calculating the topological index, based on a self-consistent functional-integral theory, is proposed. The method makes it possible to take into account thermal fluctuations and study the behavior of the topological index as a function of temperature and Hamiltonian parameters. The chiral d+id superconducting phase of a quasi-two-dimensional model with effective attraction between the electrons located at the nearest sites of a triangular lattice is considered. It is shown that the characteristic features in the energy dependence of the self-energy part, which arise when thermal fluctuations are taken into account, have a structure that does not lead to a change in the topological properties of the system. It is found that thermal fluctuations, as well as an increase in effective attraction in this system, contribute to the expansion of the temperature region, in which the value of the topological index is close to the integer C1=-2.

cond-mat.supr-con↗

Thermal fluctuations in superconducting phases with chiral $ d + id $ and $ s $ symmetry on a triangular lattice

The behavior of thermal fluctuations of a superconducting order parameter with extended $ s $ and chiral $ d + id $ symmetry is investigated. The study is carried out on a triangular lattice within the framework of the quasi-two-dimensional single-band model with attraction between electrons at neighboring sites. The method of consistent consideration of the order parameter fluctuations and the charge carrier scattering by fluctuations of coupled electron pairs, based on the theory of functional integration is used. The distribution functions of the phase fluctuation probabilities depending on temperature and charge carrier concentration are obtained. The temperature dependences of the amplitudes of the averaged superconducting order parameter are calculated. A phase diagram of superconducting states is constructed for the entire range of variation in the charge carrier concentration $ 0 <n <2 $. Near the boundaries of this range, topologically trivial superconducting states with extended $ s $ symmetry are realized, while a superconducting state with topologically nontrivial chiral $ d + id $ symmetry is realized between them. The calculated anomalous self-energies are compared with the experimental ones obtained using machine learning techniques.

cond-mat.str-el↗

Phase diagram of t-t' Hubbard model taking into account spin-spiral waves and phase separation at finite temperature

The effect of temperature on the magnetic phase separation and the parameters of spin-spiral waves (SSW) is studied using a two-dimensional (2D) single-band $t-t'$ Hubbard model and the Hubbard-Stratonovich transformation. Both commensurate (antiferromagnetic (AF)) and incommensurate (helical) magnetic phases are considered. It is shown that the temperature significantly affects the collinear and helical magnetic phases. With an increase in the temperature, the phase-separation (PS) regions (AF$+[Q,Q])$, $([Q,Q]+[Q,π])$ get substantially reduced but new regions $([Q_{1},π]+[Q_{2},π])$, (AF$+[Q,π])$ arise. The results are used for the interpretation of the magnetic properties of cuprates.

cond-mat.str-el↗

Diffusive magnetotransport in a two-dimensional Rashba system

An analytical approach to calculation of the conductivity tensor, $σ$, of a two-dimensional (2D) electron system with Rashba spin-orbit interaction (SOI) in an orthogonal magnetic field is proposed. The electron momentum relaxation is assumed to be due to electron scattering by a random field of short-range impurities, which is taken into account in the Born approximation. An exact expression for the one-particle Green function of an electron with Rashba SOI in an arbitrary magnetic field is suggested. This expression allows us to obtain analytical formulas for the density of states (DOS) and $σ$ in the self-consistent Born and ladder approximation, respectively, which hold true in a wide range of magnetic fields, from the weak ($ω_{c}τ<< 1$) up to the quantizing ($ω_{c}τ\gtrsim 1$) ones. It is shown that in the ladder approximation the Rashba SOI has no effect at all on the conductivity magnitude in the whole range of classical (non quantizing) magnetic fields. The Shubnikov-de Haas (SdH) oscillation period is shown to be related to the total charge carrier concentration by the conventional formula, irrespective of the SOI magnitude. A simple equation defining the location of the SdH oscillation beating nodes is obtained. The results are in good agreement with the experimental and recent numerical investigations.

cond-mat.mes-hall↗

Diffusive magnetotransport in a 2D Rashba system

We present calculations of the conductivity tensor σof a 2D-system with the Rashba spin-orbit interaction (SOI) in an orthogonal magnetic field, with allowance for electron elastic scattering by a Gaussian δ-correlated random potential in the self-consistent Born approximation. The calculations are performed proceeding from the Kubo formula using a new exact epresentation of the one-particle Green function of the 2D-system with SOI in an arbitrary magnetic field. We have obtained the analytical expressions for the density of states and σwhich have a simple interpretation in terms of the two-subband model and hold good in a wide range from the classical magnetic fields (ω_{c}τ\ll 1) up to the quantizing ones (ω_{c}^{}τ\gtrsim 1). The numerical analysis of the Shubnikov - de Haas oscillations of the kinetic coeffitients and of their behavior in the classical fields region is performed.

cond-mat.mes-hall↗

On the Possibility of Experimental Verification of the Some Localization Theory Predictions

The spatial non-locality (dispersion) of the transport equations results in a nonlinear dependence of the voltage drop $U$ on the distance between the points of measuring. Therefore the results of the usual two-probe measurements of the conductivity depend essentially on the relation between the sample linear size $L$ and the spatial dispersion scale $R$ of the generalized diffusion coefficient $D(q,ω)$. This makes it possible to get information on the character of the spatial non-locality of $D(q,ω)$ in the Anderson localization regime and, in particular, on the correlation multifractal dimension $D_{2}$ of the electron wave functions near the mobility edge.

cond-mat.dis-nn↗