Superconductivity in Pd-intercalated charge-density-wave rare earth poly-tellurides RETen
J. B. He, P. P. Wang, H. X. Yang, Y. J. Long, L. X. Zhao, C. Ma, D. M., Wang, X. C. Shangguan, Z. A. Ren, J. Q. Li, and G. F. Chen

TL;DR
This study reports the discovery of bulk superconductivity in Pd-intercalated rare-earth poly-tellurides, revealing how Pd intercalation suppresses charge-density-wave order and induces superconductivity, offering a new model for studying their interplay.
Contribution
It introduces Pd-intercalated RETen compounds as a new system where CDW suppression leads to superconductivity, advancing understanding of their relationship.
Findings
Pd intercalation suppresses CDW order
Superconductivity emerges in Pd-RETen compounds
High transition temperature observed
Abstract
The interplay between magnetism and superconductivity is one of the dominant themes in the study of unconventional superconductors, such as high-Tc cuprates, iron pnictides and heavy fermions. In such systems, the same d- or f-electrons tend to form magnetically ordered states and participate in building up a high density of states at the Fermi level, which is responsible for the superconductivity. Charge-density-wave (CDW) is another fascinating collective quantum phenomenon in some low dimensional materials, like the prototypical transition-metal poly-chalcogenides, in which CDW instability is frequently found to accompany with superconducting transition at low temperatures. Remarkably, similar to the antiferromagnetic superconductors, superconductivity can also be achieved upon suppression of CDW order via chemical doping or applied pressure in 1T-TiSe2. However, in these CDW…
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Taxonomy
TopicsIron-based superconductors research · Organic and Molecular Conductors Research · Rare-earth and actinide compounds
