Superconducting properties and pseudogap from preformed Cooper pairs in the triclinic (CaFe$_{1-x}$Pt$_x$As)$_{10}$Pt$_3$As$_8$
M. A. Surmach, F. Br\"uckner, S. Kamusella, R. Sarkar, P. Y., Portnichenko, J. T. Park, G. Ghambashidze, H. Luetkens, P. Biswas, W. J., Choi, Y. I. Seo, Y. S. Kwon, H.-H. Klauss, D. S. Inosov

TL;DR
This study investigates a novel iron-based superconductor with a triclinic structure, revealing two superconducting gaps, a persistent spin excitation mode above T_c, and evidence of a pseudogap likely linked to preformed Cooper pairs.
Contribution
The paper provides new insights into the superconducting and magnetic properties of (CaFe$_{1-x}$Pt$_x$As)$_{10}$Pt$_3$As$_8$, including the identification of a pseudogap and a high-energy spin excitation mode.
Findings
Presence of two superconducting gaps with $ riangle_1 eq riangle_2$.
Observation of a persistent spin excitation mode at 7 meV above T_c.
Detection of a pseudogap onset at T* = 45 K associated with preformed Cooper pairs.
Abstract
Using a combination of muon-spin relaxation (SR), inelastic neutron scattering (INS) and nuclear magnetic resonance (NMR), we investigated the novel iron-based superconductor with a triclinic crystal structure (CaFePtAs)PtAs (T = 13 K), containing platinum-arsenide intermediary layers. The temperature dependence of the superfluid density obtained from the SR relaxation-rate measurements indicates the presence of two superconducting gaps, . According to our INS measurements, commensurate spin fluctuations are centered at the (, 0) wave vector, like in most other iron arsenides. Their intensity remains unchanged across T, indicating the absence of a spin resonance typical for many Fe-based superconductors. Instead, we observed a peak in the spin-excitation spectrum around…
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