arXiv · 1108.3491
A minimum single-band model for low-energy excitations in superconducting K$_x$Fe$_2$Se$_2$
Abstract
We propose a minimum single-band model for the newly discovered iron-based superconducting K$_x$Fe$_2$Se$_2$. Our model is found to be numerically consistent with the five-orbital model at low energies. Based on our model and the random phase approximation, we study the spin fluctuation and the pairing symmetry of superconducting gap function. The $(\pi/2,\pi/2)$ spin excitation and the $d_{x^2-y^2}$ pairing symmetry are revealed. All of the results can well be understood in terms of the interplay between the Fermi surface topology and the local spin interaction, providing a sound picture to explain why the superconducting transition temperature is as high as to be comparable to those in pnictides and some cuprates. A common origin of superconductivity is elucidated for this compound and other high-T$_c$ materials.
Explore related subjects
Keep this discovery
Tao Zhou, Z. D. Wang. 2011-08-17. A minimum single-band model for low-energy excitations in superconducting K$_x$Fe$_2$Se$_2$. https://doi.org/10.1140/epjb/e2012-30315-8
Cite the original work for its findings. Save a collection to share your selection of sources.