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Dive into the research topics where Shuxiang Yang is active.

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Featured researches published by Shuxiang Yang.


Physical Review B | 2013

Unconventional superconductivity on the triangular lattice Hubbard model

Kuang Shing Chen; Zi Yang Meng; Unjong Yu; Shuxiang Yang; Mark Jarrell; Juana Moreno

Using large-scale dynamical cluster quantum Monte Carlo simulations, we explore the unconventional superconductivity in the hole-doped Hubbard model on the triangular lattice. Due to the interplay of electronic correlations, geometric frustration, and Fermi surface topology, we find a doubly degenerate singlet pairing state at an interaction strength close to the bare bandwidth. Such an unconventional superconducting state is mediated by antiferromagnetic spin fluctuations along the � -K direction, where the Fermi surface is nested. An exact decomposition of the irreducible particle-particle vertex further confirms the dominant component of the effective pairing interaction comes from the spin channel. Our findings suggest the existence of chiral d + id superconductivity in a hole-doped Hubbard triangular lattice in a strongly correlated regime, and provide insight into the superconducting phases of the water-intercalated sodium cobaltates NaxCoO2 · yH2O, as well as the organic compounds κ-(ET)2X and Pd(dmit)2.


Physical Review E | 2009

Parquet approximation for the 4x4 Hubbard cluster.

Shuxiang Yang; Herbert Fotso; Jun Liu; Thomas A. Maier; Karen Tomko; Ed F D'Azevedo; R. T. Scalettar; Thomas Pruschke; Mark Jarrell

We present a numerical solution of the parquet approximation, a conserving diagrammatic approach which is self-consistent at both the single-particle and the two-particle levels. The fully irreducible vertex is approximated by the bare interaction thus producing the simplest approximation that one can perform with the set of equations involved in the formalism. The method is applied to the Hubbard model on a half-filled 4x4 cluster. Results are compared to those obtained from determinant quantum Monte Carlo (DQMC), FLuctuation EXchange (FLEX), and self-consistent second-order approximation methods. This comparison shows a satisfactory agreement with DQMC and a significant improvement over the FLEX or the self-consistent second-order approximation.


Physical Review Letters | 2011

Proximity of the Superconducting Dome and the Quantum Critical Point in the Two-Dimensional Hubbard Model

Shuxiang Yang; Herbert Fotso; Shi-Quan Su; Dimitrios Galanakis; Ehsan Khatami; Jian-Huang She; Juana Moreno; Jan Zaanen; Mark Jarrell

We use the dynamical cluster approximation to understand the proximity of the superconducting dome to the quantum critical point in the two-dimensional Hubbard model. In a BCS formalism, T(c) may be enhanced through an increase in the d-wave pairing interaction (V(d)) or the bare pairing susceptibility (χ(0d)). At optimal doping, where V(d) is revealed to be featureless, we find a power-law behavior of χ(0d)(ω=0), replacing the BCS log, and strongly enhanced T(c). We suggest experiments to verify our predictions.


Physical Review E | 2013

Solving the parquet equations for the Hubbard model beyond weak coupling

Ka-Ming Tam; Herbert Fotso; Shuxiang Yang; Tae-Woo Lee; Juana Moreno; J. Ramanujam; Mark Jarrell

We find that imposing crossing symmetry in the iteration process considerably extends the range of convergence for solutions of the parquet equations for the Hubbard model. When crossing symmetry is not imposed, the convergence of both simple iteration and more complicated continuous loading (homotopy) methods is limited to high temperatures and weak interactions. We modify the algorithm to impose the crossing symmetry without increasing the computational complexity. We also imposed time reversal and a subset of the point group symmetries, but they did not further improve the convergence. We elaborate the details of the latency hiding scheme which can significantly improve the performance in the computational implementation. With these modifications, stable solutions for the parquet equations can be obtained by iteration more quickly even for values of the interaction that are a significant fraction of the bandwidth and for temperatures that are much smaller than the bandwidth. This may represent a crucial step towards the solution of two-particle field theories for correlated electron models.


Physical Review B | 2013

Dual fermion method for disordered electronic systems

Hanna Terletska; Shuxiang Yang; Zi Yang Meng; Juana Moreno; Mark Jarrell

While the coherent potential approximation (CPA) is the prevalent method for the study of disordered electronic systems, it fails to capture nonlocal correlations and Anderson localization. To incorporate such effects, we extend the dual fermion approach to disordered systems using the replica method. The developed method utilizes the exact mapping to the dual fermion variables, and includes intersite scattering via diagrammatic perturbation theory in the dual variables. The CPA is recovered as a zeroth-order approximation. Results for single- and two-particle quantities show good agreement with a cluster extension of the CPA; moreover, weak localization is captured. As a natural extension of the CPA, our method presents an alternative to existing nonlocal cluster theories for disordered systems, and has potential applications in the study of disordered systems with electronic interactions.


Physical Review B | 2011

Dual fermion dynamical cluster approach for strongly correlated systems

Shuxiang Yang; Herbert Fotso; Hartmut Hafermann; Ka-Ming Tam; Juana Moreno; Th. Pruschke; Mark Jarrell

We have designed a multiscale approach for strongly correlated systems by combining the dynamical cluster approximation (DCA) and the recently introduced dual fermion formalism. This approach employs an exact mapping from a real lattice to a DCA cluster of linear size


Physical Review B | 2015

Metal-insulator transition in a weakly interacting disordered electron system

Chinedu Ekuma; Shuxiang Yang; Hanna Terletska; Ka-Ming Tam; N. S. Vidhyadhiraja; Juana Moreno; Mark Jarrell

{L}_{c}


Physical Review B | 2017

The Calculation of Two-Particle Quantities in the Typical Medium Dynamical Cluster Approximation

Yi Zhang; Y. F. Zhang; Shuxiang Yang; Ka-Ming Tam; N. S. Vidhyadhiraja; Mark Jarrell

embedded in a dual fermion lattice. Short-length-scale physics is addressed by the DCA cluster calculation, while longer-length-scale physics is addressed diagrammatically using dual fermions. The bare and dressed dual fermionic Green functions scale as


Physical Review B | 2014

Dual-fermion approach to interacting disordered fermion systems

Shuxiang Yang; Patrick Haase; Hanna Terletska; Zi Yang Meng; Thomas Pruschke; Juana Moreno; Mark Jarrell

\mathcal{O}(1/{L}_{c})


Archive | 2012

Dynamical Cluster Approximation

Herbert Fotso; Shuxiang Yang; Kuang-Shing Chen; S. Pathak; Juana Moreno; Mark Jarrell; Karlis Mikelsons; Ehsan Khatami; Dimitrios Galanakis

, so perturbation theory on the dual lattice converges very quickly, e.g., the dual Fermion self-energy calculated with simple second-order perturbation theory is of order

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Mark Jarrell

Louisiana State University

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Juana Moreno

Louisiana State University

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Herbert Fotso

Louisiana State University

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Ka-Ming Tam

Louisiana State University

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Zi Yang Meng

University of Stuttgart

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Jun Liu

Louisiana State University

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Karen Tomko

Ohio Supercomputer Center

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