The ground state of electron-doped $t-t'-J$ model on cylinders
Yang Shen, Xiangjian Qian, Mingpu Qin

TL;DR
This study uses DMRG to analyze the ground states of the electron-doped $t-t'-J$ model on cylinders, revealing finite size effects, boundary condition sensitivities, and potential long-range superconducting order at wider system sizes.
Contribution
It provides a detailed finite size and boundary condition analysis of the electron-doped $t-t'-J$ model, highlighting phase transitions and the emergence of possible superconductivity.
Findings
Ground state switches between Neel and stripe states with boundary conditions.
Pairing correlations increase with system width, indicating possible long-range order.
Doping level $1/8$ lies near a phase transition boundary.
Abstract
We perform a comprehensive study of the electron-doped model on cylinders with Density Matrix Renormalization Group (DMRG). We adopt both periodic and anti-periodic boundary conditions along the circumference direction to explore the finite size effect. We study doping levels of , , and which represent the most interesting region in the phase diagram of electron-doped cuprates. We find that for width-4 and 6 systems, the ground state for fixed doping switches between anti-ferromagnetic Neel state and stripe state under different boundary conditions and with system widths, indicating the presence of large finite size effect in the model. We also have a careful analysis of the -wave pairing correlations which also changes quantitatively with boundary conditions and widths of the system. However, the pairing correlations are enhanced when the system…
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Taxonomy
TopicsQuantum, superfluid, helium dynamics · Cold Atom Physics and Bose-Einstein Condensates · Physics of Superconductivity and Magnetism
