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Superconductivity frequently appears by doping compounds that show a collective phase transition. So far, however, this has not been observed in topological materials. Here we report the discovery of superconductivity induced by Ga doping…

Superconductivity · Physics 2021-12-17 Yanwei Cui , Siqi Wu , Qinqing Zhu , Guorui Xiao , Bin Liu , Jifeng Wu , Guanghan Cao , Zhi Ren

The recent discovery of high-temperature superconductivity in La$_3$Ni$_2$O$_7$ under high pressure has stimulated intensive investigations concerning its paring mechanism and a correct description of its effective low-energy physics.…

Superconductivity · Physics 2025-01-17 Jiangfan Wang , Yi-feng Yang

AuBe is a chiral, non-centrosymmetric superconductor with transition temperature $T_C$ $\simeq$ 3.25 K. The broken inversion symmetry in its crystal structure makes AuBe a possible candidate to host a mixed singlet-triplet pairing symmetry…

The cubic compound PrTi$_2$Al$_{20}$ is a quadrupolar Kondo lattice system that exhibits quadrupolar ordering due to the non-Kramers $\Gamma_3$ ground doublet and has strong hybridization between $4f$ and conduction electrons. Our study…

Strongly Correlated Electrons · Physics 2015-06-05 Akito Sakai , Kentaro Kuga , Satoru Nakatsuji

The emergent phenomena such as superconductivity and topological phase transitions can be observed in strict two-dimensional crystalline matters. Artificial interfaces and one atomic thickness layers are typical 2D materials of this kind.…

Superconductivity · Physics 2019-06-12 J. G. Guo , X. Chen , X. Y. Jia , Q. H. Zhang , N. Liu , H. C. Lei , S. Y. Li , L. Gu , S. F. Jin , X. L. Chen

Using advanced dynamical mean-field theory on a realistic level we study the normal-state correlated electronic structure of the high-pressure superconductor La$_3$Ni$_2$O$_7$ and compare the features of the conventional bilayer (2222)…

Strongly Correlated Electrons · Physics 2024-07-26 Frank Lechermann , Steffen Bötzel , Ilya M. Eremin

The purple bronze Li$_{0.9}$Mo$_6$O$_{17}$ is of interest due to its quasi-one-dimensional electronic structure and the possible Luttinger liquid behavior resulting from it. For sufficiently low temperatures, it is a superconductor with a…

Superconductivity · Physics 2015-11-10 Weejee Cho , Christian Platt , Ross H. McKenzie , S. Raghu

In multi-band systems, electrons from different orbitals coexist at the Fermi surface. An attractive interaction among these quasi-particles gives rise to inter-band or hybrid pairs which eventually condense in a superconducting state.…

Strongly Correlated Electrons · Physics 2015-06-11 Heron Caldas , Mucio A. Continentino

Materials with a kagome sublattice have been heavily studied recently for their exotic electronic band structure, structural frustration, high-temperature charge order transitions, and unconventional electron-phonon coupling. In LaRu3Si2,…

Superconductivity · Physics 2026-03-12 Tobi Gaggl , Ryo Misawa , Markus Kriener , Yuki Tanaka , Rinsuke Yamada , Max Hirschberger

Bismuth oxysulfide Bi4O4S3, which has recently been claimed to be an exotic superconductor (Tc = 4.5 K), was investigated by magnetic susceptibility and electrical resistivity measurements as well as by electron probe microanalysis.…

Superconductivity · Physics 2013-05-10 Clastin I. Sathish , Hai Luke Feng , Youguo Shi , Kazunari Yamaura

Quasi-two-dimensional molecular conductor $\lambda$-(BETS)$_2$GaCl$_4$ shows superconductivity (SC) below 5.5K, neighboring the dimer-type Mott insulating phase. To elucidate the origin of SC and its gap function, we carry out…

Superconductivity · Physics 2018-08-01 Hirohito Aizawa , Takashi Koretsune , Kazuhiko Kuroki , Hitoshi Seo

Electronic structures of orthorhombic ternary nickel silicides: superconducting Lu2Ni3Si5 and its non-superconducting counterpart, Y2Ni3Si5, have been calculated employing the fully-relativistic and full-potential local-orbital method…

Superconductivity · Physics 2014-09-08 M. Samsel-Czekała , M. J. Winiarski

We consider a multiband metal with deep primary bands and a shallow secondary one. In the normal state the system undergoes Lifshitz transition when the bottom of the shallow band crosses the Fermi level. In the superconducting state Cooper…

Superconductivity · Physics 2015-06-22 A. E. Koshelev , K. A. Matveev

Recently discovered alongside its sister compounds KV$_3$Sb$_5$ and RbV$_3$Sb$_5$, CsV$_3$Sb$_5$ crystallizes with an ideal kagome network of vanadium and antimonene layers separated by alkali metal ions. This work presents the electronic…

A material called LK-99, a modified-lead apatite crystal structure with the composition Pb$_{10-x}$Cu$_x$(PO$_4$)$_6$O ($0.9<x<1.1$), has been synthesized using the solid-state method. The material exhibits the Ohmic metal characteristic of…

Superconductivity · Physics 2023-08-14 Sukbae Lee , Jihoon Kim , Hyun-Tak Kim , Sungyeon Im , SooMin An , Keun Ho Auh

Superconducting electrides have attracted growing attention for their potential to achieve high superconducting transition temperatures (TC) under pressure. However, many known electrides are chemically reactive and unstable, making…

Superconductivity becomes more interesting when it encounters dimensional constraint or topology, because it is of importance for exploring exotic quantum phenomena or developing superconducting electronics. Here we report the coexistence…

Electrides are unique materials because of the existence of interstitial anionic electrons (IAEs). Due to these loosely bound IAEs and their strong interaction with the framework of cations, electrides can host superconductivity with rather…

We report on a systematic study of the thermodynamic, electronic and charge transport properties of high-quality single crystals of BaNiS$_2$, the metallic end-member of the quasi-twodimensional BaCo$_{1-x}$Ni$_x$S$_2$ system characterized…

Superlattices of the repeated structure La(1.56)Sr(0.44)CuO(4)/La(2)CuO(4) (LSCO-LCO), where none of the constituents is superconducting, show a superconducting transition of T_c \simeq 25 K. In order to elucidate the nature of the…

Superconductivity · Physics 2012-12-21 A. Suter , E. Morenzoni , T. Prokscha , B. M. Wojek , H. Luetkens , A. Gozar , G. Logvenov , I. Bozovic
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