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We study the effects of Kohn anomalies on the superconducting properties in electron- and hole-doped cases of monolayer blue phosphorene, considering both adiabatic and non-adiabatic phonon dispersions using first-principles calculations.…

超导电性 · 物理学 2022-10-05 Mohammad Alidoosti , Davoud Nasr Esfahani , Reza Asgari

In this work we present the thermodynamic properties of the superconducting state in phosphorene. In particular, we have examined the electron doped ($n_{D}=1.3\times 10^{14} \rm{cm^{-2}}$) and biaxially strained (4 %) monolayer of black…

超导电性 · 物理学 2019-05-01 Kamila A. Szewczyk , Adam Z. Kaczmarek , Ewa A. Drzazga

Doping is one of the most prominent techniques to alter properties of a given material. Herein, the influence of the electron- and hole-doping on the selected superconducting properties of graphene are considered. In details, the…

超导电性 · 物理学 2023-04-12 Ewa A. Drzazga-Szczęśniak , Adam Z. Kaczmarek

We examine the effects of the low-level substitution of S atoms by C and Si atoms on the superconductivity of H$_3$S with the $Im\bar{3}m$ structure at megabar pressure. The hole doping can fine-tune the Fermi energy to reach the electronic…

超导电性 · 物理学 2020-12-17 Yanfeng Ge , Fan Zhang , Ranga P. Dias , Russell J. Hemley , Yugui Yao

The electron-doped silicene under the influence of the biaxial tensile strain is predicted to be the phonon-mediated superconductor. By using the Eliashberg formalism, we investigate the thermodynamic properties of the superconducting…

超导电性 · 物理学 2015-02-03 A. P. Durajski , D. Szczȩśniak , R. Szczȩśniak

In a recent paper (J.H. Schon, Ch. Kloc, R.C. Haddon and B. Batlogg, Nature 408 (2000) 549) a large increase in the superconducting critical temperature was observed in C60 doped with holes by application of a high electric field. We…

超导电性 · 物理学 2009-11-07 G. A. Ummarino , R. S. Gonnelli

Recent studies of hydrogen-dominant (superhydride) materials, such as LaH10 have led to putative discoveries of near-room temperature superconductivity at high pressures, with a superconducting transition temperature (Tc) of 250 K observed…

超导电性 · 物理学 2025-09-26 Xuejie Li , Wenbo zhao , Yuzhou Hao , Xiaoying Wang , Zhibin Gao , Xiangdong Ding

We predict by first-principles calculations that the electron-doped phosphorene is a potential BCS-like superconductor. The stretching modes at the Brillouin-zone center are remarkably softened by the electron-doping, which results in the…

超导电性 · 物理学 2014-12-23 D. F. Shao , W. J. Lu , H. Y. Lv , Y. P. Sun

The implementation of electron- and hole-doping, in conjunction to applied pressure, is analyzed as a mechanism to induce or enhance the superconducting state on fcc YH$_3$ and ScH$_3$. In particular, the evolution of their structural,…

超导电性 · 物理学 2022-05-18 S. Villa-Cortés , O. De la Peña-Seaman

The Migdal-Eliashberg (ME) formalism provides a reliable framework for describing phonon-mediated superconductivity in the adiabatic regime, where the electronic Fermi energy exceeds the characteristic phonon energy. In this work, we go…

超导电性 · 物理学 2025-12-05 Shashi B. Mishra , Hitoshi Mori , Elena R. Margine

We predict that electron-doped silicene is a good two-dimensional electron-phonon superconductor under biaxial tensile strain by first-principles calculations within rigid band approximation. Superconductivity transition temperature of…

超导电性 · 物理学 2013-11-27 Wenhui Wan , Yanfeng Ge , Fan Yang , Yugui Yao

The work describes the properties of the high-pressure superconducting state in phosphor: $p\in\{20, 30, 40, 70\}$ GPa. The calculations were performed in the framework of the Eliashberg formalism, which is the natural generalization of the…

超导电性 · 物理学 2023-07-19 A. M. Duda , R. Szczęśniak , M. Sowińska , I. Domagalska

The experimental realization of high-temperature superconductivity in compressed hydrides H$_3$S and LaH$_{10}$ at high pressures over 150 GPa has aroused great interest in reducing the stabilization pressure of superconducting hydrides.…

超导电性 · 物理学 2021-07-21 Chongze Wang , Shuyuan Liu , Hyunsoo Jeon , Seho Yi , Yunkyu Bang , Jun-Hyung Cho

This work presents an analysis of the functional derivative of the superconducting transition temperature T$_c$ with respect to the electron-phonon coupling function $\alpha^2F(\omega)$ [$\delta T_c/\delta \alpha^2$F($\omega$)] and…

超导电性 · 物理学 2020-09-14 J. A. Camargo-Martínez , G. I. González-Pedreros , F. Mesa

The emergence of near-ambient temperature superconductivity under pressure in the metal hydride systems has motivated a desire to further understand such remarkable properties, specifically critical magnetic fields. YH$_6$ is suggested to…

超导电性 · 物理学 2023-08-02 S. Villa-Cortés , O. De la Peña-Seaman , Keith V. Lawler , Ashkan Salamat

Over the past six years (2015-2021), many superconducting hydrides with critical temperatures $T_{C}$ up to 250 K, which are currently record highs, have been discovered. Now we can already say that a special field of superconductivity has…

We propose a new route to achieve the superconducting state in Boron-rich solids, the hole doping of B$_{12}$ icosahedra. For this purpose we consider a prototype metallic phase of B$_{13}$C$_2$. We show that in this compound the Boron…

超导电性 · 物理学 2009-11-10 Matteo Calandra , Nathalie Vast , Francesco Mauri

At present, hydrogen-based compounds constitute one of the most promising classes of materials for applications as a phonon-mediated high-temperature superconductors. Herein, the behavior of the superconducting phase in tellurium hydride…

Superconductivity occurs in electrochemically doped molybdenum dichalcogenides samples thicker than four layers. While the critical temperature (Tc) strongly depends on the field effect geometry (single or double gate) and on the sample…

超导电性 · 物理学 2022-11-28 Giovanni Marini , Matteo Calandra

We study two aspects of the superconductivity in a cuprate model system, its doping dependence and the influence of competing pairing mediators. We first include electron-phonon interactions beyond Migdal's approximation and solve…

超导电性 · 物理学 2024-07-12 Fabian Schrodi , Alex Aperis , Peter M. Oppeneer
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