scholarly journals Study of resonant structures in a deformed mean field by the contour deformation method in momentum space

2006 ◽  
Vol 73 (3) ◽  
Author(s):  
G. Hagen ◽  
J. S. Vaagen
2013 ◽  
Vol 2013 ◽  
pp. 1-26
Author(s):  
Partha Goswami

We consider a two-dimensional fermion system on a square lattice described by a mean-field Hamiltonian involving the singlet id-density wave (DDW) order, assumed to correspond to the pseudo-gap (PG) state, favored by the electronic repulsion and the coexisting -wave superconductivity (DSC) driven by an assumed attractive interaction within the BCS framework. Whereas the single-particle excitation spectrum of the pure DDW state consists of the fermionic particles and holes over the reasonably conducting background, the coexisting states corresponds to Bogoliubov quasi-particles in the background of the delocalized Cooper pairs in the momentum space. We find that the two gaps in the single-particle excitation spectrum corresponding to PG and DSC, respectively, are distinct and do not merge into one “quadrature” gap if the nesting property of the normal state dispersion is absent. We show that the PG and DSC are representing two competing orders as the former brings about a depletion of the spectral weight available for pairing in the anti-nodal region of momentum space where the superconducting gap is supposed to be the largest. This indicates that the PG state perhaps could not be linked to a preformed pairing scenario. We also show the depletion of the spectral weight below at energies larger than the gap amplitude. This is an important hallmark of the strong coupling superconductivity.


2017 ◽  
Vol 158 ◽  
pp. 109-119
Author(s):  
Yu Mao Wu ◽  
Weng Cho Chew ◽  
Ya-Qiu Jin ◽  
Tie-Jun Cui ◽  
Li Jun Jiang

2019 ◽  
Vol 383 (16) ◽  
pp. 1929-1936 ◽  
Author(s):  
Yu Kun Yang ◽  
Yong Wu ◽  
Yi Zhi Qu ◽  
Jian Guo Wang ◽  
R.K. Janev ◽  
...  

2006 ◽  
Vol 15 (04) ◽  
pp. 899-910 ◽  
Author(s):  
AMAN D. SOOD ◽  
RAJEEV K. PURI

We present the simulations of heavy-ion collisions in terms of participant-spectator matter. We find that this matter depends crucially on the collision dynamics and history of the nucleons. The important changes in the momentum space are due to the binary nucleon-nucleon collisions experienced during the high dense phase. This was otherwise not possible with mean field alone. The collisions push the colliding nucleons into midrapidity region responsible for the formation of participant matter. This ultimately leads to thermalization in heavy-ion collisions.


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