Renormalized q-dependent Spin Susceptibility by inverting the Random
Phase Approximation: Implications for quantitative assessment of the role of
spin fluctuations in 2D Ising superconductor NbSe$_{2}$
- URL: http://arxiv.org/abs/2104.13205v1
- Date: Tue, 27 Apr 2021 14:09:59 GMT
- Title: Renormalized q-dependent Spin Susceptibility by inverting the Random
Phase Approximation: Implications for quantitative assessment of the role of
spin fluctuations in 2D Ising superconductor NbSe$_{2}$
- Authors: Suvadip Das and Igor I. Mazin
- Abstract summary: We describe an alternative way to calculate the static $chi(mathbfq)$, which can be applied to most common DFT codes without additional programming.
We find that the structure of spin fluctuations is more complicated, with the fluctuation spectrum sharply peaked at $mathbfqapprox (0.2,0)$.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: Accurate determination of the full momentum-dependent spin susceptibility
$\chi(\mathbf{q}) $ is very important for the description of magnetism and
superconductivity. While in principle the formalism for calculating
$\chi(\mathbf{q})$ in the linear response density functional theory (DFT) is
well established, hardly any publicly available code includes this capability.
Here, we describe an alternative way to calculate the static
$\chi(\mathbf{q})$, which can be applied to most common DFT codes without
additional programming. The method combined standard fixed-spin-moment
calculations of $\chi(\mathbf{0}) $ with direct calculations of the energy of
spin spirals stabilized by an artificial Hubbard interaction. From these
calculations, $\chi_{DFT}(\mathbf{q} )$ can be extracted by inverting the RPA
formula. We apply this recipe to the recently discovered Ising
superconductivity in NbSe$_2$ monolayer, one of the most exciting findings in
superconductivity in recent years. It was proposed that spin fluctuations may
strongly affect the parity of the order parameter. Previous estimates suggested
proximity to ferromagnetism, $i.e.$, $\chi(\mathbf{q})$ peaked at
$\mathbf{q}=0$. We find that the structure of spin fluctuations is more
complicated, with the fluctuation spectrum sharply peaked at $\mathbf{q}\approx
(0.2,0)$. Such a spectrum would change the interband pairing interaction and
considerably affect the superconducting state.
Related papers
- Spin Current Density Functional Theory of the Quantum Spin-Hall Phase [59.50307752165016]
We apply the spin current density functional theory to the quantum spin-Hall phase.
We show that the explicit account of spin currents in the electron-electron potential of the SCDFT is key to the appearance of a Dirac cone.
arXiv Detail & Related papers (2022-08-29T20:46:26Z) - On parametric resonance in the laser action [91.3755431537592]
We consider the selfconsistent semiclassical Maxwell--Schr"odinger system for the solid state laser.
We introduce the corresponding Poincar'e map $P$ and consider the differential $DP(Y0)$ at suitable stationary state $Y0$.
arXiv Detail & Related papers (2022-08-22T09:43:57Z) - Magnetic excitations, non-classicality and quantum wake spin dynamics in
the Hubbard chain [0.0]
Quantum Fisher information (QFI) is a witness of multipartite entanglement, and magnetic Van Hove correlations $G(r,t)$, a probe of local real-space real-time spin dynamics.
We show that QFI grows with $U$ and can witness bipartite entanglement above $U=2.5$.
We discuss experimental candidates for observing the $G(r,t)$ dynamics found at low $U$.
arXiv Detail & Related papers (2022-03-12T03:48:21Z) - A Law of Robustness beyond Isoperimetry [84.33752026418045]
We prove a Lipschitzness lower bound $Omega(sqrtn/p)$ of robustness of interpolating neural network parameters on arbitrary distributions.
We then show the potential benefit of overparametrization for smooth data when $n=mathrmpoly(d)$.
We disprove the potential existence of an $O(1)$-Lipschitz robust interpolating function when $n=exp(omega(d))$.
arXiv Detail & Related papers (2022-02-23T16:10:23Z) - High-harmonic generation in spin and charge current pumping at
ferromagnetic or antiferromagnetic resonance in the presence of spin-orbit
coupling [0.0]
A cornerstone effect in spintronics is spin pumping by dynamical magnetization that is steadily precessing with frequency.
Here we employ more general than "standard model" approaches, time-dependent nonequilibrium Green's function (NEGF) and Floquet-NEGF, to predict unforeseen features of spin pumping.
arXiv Detail & Related papers (2021-12-29T17:59:55Z) - Crosstalk- and charge-noise-induced multiqubit decoherence in
exchange-coupled quantum dot spin qubit arrays [0.0]
We determine the interqubit crosstalk- and charge-noise-induced decoherence time $Tast$ for a system of $L$ exchange-coupled electronic spin qubits.
We calculate the expectation value of one of the spins, the Hamming distance, and the entanglement entropy and show that they are good proxies for the return probability for measuring $Tast$.
arXiv Detail & Related papers (2021-12-15T18:59:59Z) - Dynamics of position disordered Ising spins with a soft-core potential [4.243439940856083]
We study magnetization relaxation of Ising spins distributed randomly in a $d$-dimension.
In the homogeneous case, an analytic expression is derived at the thermodynamic limit.
In the opposite limit of $l_rho/R_cgg1$, a similar dynamics emerges at later time.
arXiv Detail & Related papers (2021-11-01T09:16:39Z) - Resolving mean-field solutions of dissipative phase transitions using
permutational symmetry [0.0]
Phase transitions in dissipative quantum systems have been investigated using various analytical approaches, particularly in the mean-field (MF) limit.
These two solutions cannot be reconciled because the MF solutions above $d_c$ should be identical.
numerical studies on large systems may not be feasible because of the exponential increase in computational complexity.
arXiv Detail & Related papers (2021-10-18T16:07:09Z) - $\mathcal{P}$,$\mathcal{T}$-odd effects for RaOH molecule in the excited
vibrational state [77.34726150561087]
Triatomic molecule RaOH combines the advantages of laser-coolability and the spectrum with close opposite-parity doublets.
We obtain the rovibrational wave functions of RaOH in the ground electronic state and excited vibrational state using the close-coupled equations derived from the adiabatic Hamiltonian.
arXiv Detail & Related papers (2020-12-15T17:08:33Z) - Anharmonic oscillator: a solution [77.34726150561087]
The dynamics in $x$-space and in $(gx)-space corresponds to the same energy spectrum with effective coupling constant $hbar g2$.
A 2-classical generalization leads to a uniform approximation of the wavefunction in $x$-space with unprecedented accuracy.
arXiv Detail & Related papers (2020-11-29T22:13:08Z) - Linear Time Sinkhorn Divergences using Positive Features [51.50788603386766]
Solving optimal transport with an entropic regularization requires computing a $ntimes n$ kernel matrix that is repeatedly applied to a vector.
We propose to use instead ground costs of the form $c(x,y)=-logdotpvarphi(x)varphi(y)$ where $varphi$ is a map from the ground space onto the positive orthant $RRr_+$, with $rll n$.
arXiv Detail & Related papers (2020-06-12T10:21:40Z)
This list is automatically generated from the titles and abstracts of the papers in this site.
This site does not guarantee the quality of this site (including all information) and is not responsible for any consequences.