scholarly journals Electronic Structure Correspondence of Singlet-Triplet Scale Separation in Strained Sr2RuO4

2021 ◽  
Vol 11 (2) ◽  
pp. 508
Author(s):  
Swagata Acharya ◽  
Dimitar Pashov ◽  
Elena Chachkarova ◽  
Mark van Schilfgaarde ◽  
Cédric Weber

At a temperature of roughly 1 K, Sr2RuO4 undergoes a transition from a normal Fermi liquid to a superconducting phase. Even while the former is relatively simple and well understood, the superconducting state has not even been understood after 25 years of study. More recently, it has been found that critical temperatures can be enhanced by the application of uniaxial strain, up to a critical strain, after which it falls off. In this work, we take an “instability” approach and seek divergences in susceptibilities. This provides an unbiased way to distinguish tendencies to competing ground states. We show that in the unstrained compound, the singlet and triplet instabilities of the normal Fermi liquid phase are closely spaced. Under uniaxial strain, electrons residing on all orbitals contributing to the Fermiology become more coherent, while the electrons of the Ru-dxy character become heavier, and the electrons of the Ru-dxz,yz characters become lighter. In the process, Im χ(q,ω) increases rapidly around q=(0.3,0.3,0)2π/a and q=(0.5,0.25,0)2π/a, while it gets suppressed at all other commensurate vectors, in particular at q=0, which is essential for spin-triplet superconductivity. We observe that the magnetic anisotropy under strain drops smoothly, which is concomitant with the increment in singlet instability. Thus, the triplet superconducting instability remains the lagging instability of the system, and the singlet instability enhances under strain, leading to a large energy-scale separation between these competing instabilities. However, since this happens even without spin-orbit coupling, we believe it is primarily the enhancement in the spin fluctuation glue around quasi-anti-ferromagnetic vectors that drives the Cooper pairing instead of the magnetic anisotropy. At large strain, an instability to a spin density wave overtakes the superconducting one. The analysis relies on a high-fidelity, ab initio description of the one-particle properties and two-particle susceptibilities, based on the quasiparticle self-consistent GWapproximation augmented by dynamical mean field theory. This approach is described and its high fidelity confirmed by comparing to observed one- and two-particle properties.

2013 ◽  
Vol 06 (05) ◽  
pp. 1340001 ◽  
Author(s):  
JINLE LAN ◽  
BIN ZHAN ◽  
YUAN-HUA LIN ◽  
CE-WEN NAN ◽  
YAO-CHUN LIU

The low temperature transport and magnetic properties were investigated in the misfit-layered Ca 2 Co 2 O 5 compound. The compound exhibits incommensurate spin-density-wave (SDW) state in the dχ-1/dT curve at 20 K, which is confirmed by the resistivity (ρ) characterization. The resistivity shows an upturn from metallic to insulating behavior at TM-I (130 K) and strong Fermi liquid behaviors with ρ ~ T2 relation between TM-I and T*(225 K ). The Seebeck coefficient shows abnormal temperature dependence at Tp (40 K), which is suggested to origin from the long order of atomic in [ Ca 2 CoO 3] sublayer and spin fluctuation of Co ions. Moreover, large Seebeck coefficient (120 μV/K) and low thermal conductivity (2.5 W/mK) were obtained at room temperature, indicating that it is a promising p-type thermoelectric material for energy conversion.


1999 ◽  
Vol 13 (01) ◽  
pp. 25-48 ◽  
Author(s):  
DAVID DJAJAPUTRA ◽  
JOHN RUVALDS

We investigate the response of an electron system which exhibits ideal nesting features. Using the standard Matsubara formalism we derive analytic expressions for the imaginary and real parts of the bare particle–hole susceptibility. The imaginary part has sharp peaks whose maxima at the nesting momenta approximately scale with (ω/T). The peak lineshapes resemble neutron scattering data on chromium and some copper oxide superconductors. The real part of the bare susceptibility at the nesting vectors diverges logarithmically at low temperatures. Analytic formulas for the first vertex correction to the susceptibility are derived for a Hubbard interaction and its momentum and temperature variations are calculated numerically. This term detracts substantially from the ordinary RPA terms for intermediate values of the Coulomb repulsion. Exact cancellation of a certain class of diagrams at half filling is shown to result from particle–hole symmetry. We discuss the consequences of these results for spin fluctuation theories of high temperature superconductors and spin density wave instabilities.


2000 ◽  
Vol 69 (7) ◽  
pp. 2164-2169 ◽  
Author(s):  
Fangzhun Guo ◽  
Keizo Murata ◽  
Akihiro Oda ◽  
Yoshiyuki Mizuno ◽  
Harukazu Yoshino

Physica B+C ◽  
1977 ◽  
Vol 86-88 ◽  
pp. 327-328
Author(s):  
J.W. Allen ◽  
C.Y. Young

1995 ◽  
Vol 09 (10) ◽  
pp. 1171-1184 ◽  
Author(s):  
A.A. POVZNER ◽  
D.V. LIKHACHEV

The possible occurrence of “temperature-induced ferromagnetism” in itinerant antiferromagnets with spin-density wave and strong paramagnets is discussed on the basis of spin fluctuation theory taking account of the effect of large ferromagnetic spin fluctuations. It is shown that the presence of a point of inflexion of the density of states near the Fermi level leads to the appearance of temperature-induced ferromagnetic order parameter in the itinerant electron systems. In addition the influence of this order parameter on the antiferromagnetic transition temperature is demonstrated and new mechanism of the magnetic phase transition is studied in relation to the magnetism of TiBe 2.


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