The link between s and d components of electron boson coupling constants in one band d wave Eliashberg theory for high Tc superconductors
Main Article Content
Abstract
The phenomenology of overdoped high Tc uperconductors can be described by a one band d wave Eliashberg theory where the mechanism of superconducting coupling is mediated by antiferromagnetic spin fluctuations and whose characteristic energy Ω0 scales with Tc according to the empirical law Ω0 = 5.8 kBTc. This model presents universal characteristics that are independent of the critical temperature such as the link between the s and d components of electron boson coupling constants and the invariance of the ratio 2∆/kBTc. This situation arises from the particular structure of Eliashberg's equations which, despite being non-linear equations, present solutions with these simple properties.
Downloads
Article Details
Copyright (c) 2023 Ummarino GA.
This work is licensed under a Creative Commons Attribution 4.0 International License.
Licensing and protecting the author rights is the central aim and core of the publishing business. Peertechz dedicates itself in making it easier for people to share and build upon the work of others while maintaining consistency with the rules of copyright. Peertechz licensing terms are formulated to facilitate reuse of the manuscripts published in journals to take maximum advantage of Open Access publication and for the purpose of disseminating knowledge.
We support 'libre' open access, which defines Open Access in true terms as free of charge online access along with usage rights. The usage rights are granted through the use of specific Creative Commons license.
Peertechz accomplice with- [CC BY 4.0]
Explanation
'CC' stands for Creative Commons license. 'BY' symbolizes that users have provided attribution to the creator that the published manuscripts can be used or shared. This license allows for redistribution, commercial and non-commercial, as long as it is passed along unchanged and in whole, with credit to the author.
Please take in notification that Creative Commons user licenses are non-revocable. We recommend authors to check if their funding body requires a specific license.
With this license, the authors are allowed that after publishing with Peertechz, they can share their research by posting a free draft copy of their article to any repository or website.
'CC BY' license observance:
License Name |
Permission to read and download |
Permission to display in a repository |
Permission to translate |
Commercial uses of manuscript |
CC BY 4.0 |
Yes |
Yes |
Yes |
Yes |
The authors please note that Creative Commons license is focused on making creative works available for discovery and reuse. Creative Commons licenses provide an alternative to standard copyrights, allowing authors to specify ways that their works can be used without having to grant permission for each individual request. Others who want to reserve all of their rights under copyright law should not use CC licenses.
Eliashberg GM. Sov Phys. JETP. 1963; 3:696.
Ummarino GA. Eliashberg Theory. In: Emergent Phenomena in Correlated Matter, edited by E. Pavarini, E. Koch, and U. Schollwöck, Forschungszentrum Jülich GmbH and Institute for Advanced Simulations. 2013; 13.
Marsiglio F. Eliashberg theory: A short review. Annals of Physics. 2020; 417: 168102.
Carbotte JP. Properties of boson-exchange superconductors. Rev Mod Phys. 1990; 62: 1027.
Daghero D, Gonnelli RS, Ummarino GA, Kazakov SM, Karpinski J, Stepanov VA, Jun J. Point-contact spectroscopy in MgB2 single crystals in magnetic field. Physica C Superconductivity. 2003; 385: 255-263.
Daghero D, Calzolari A, Ummarino GA, Tortello M, Gonnelli RS, Stepanov VA, Tarantini C, Manfrinetti P, Lehmann E. Point-contact spectroscopy in neutron-irradiated Mg11 B2. Phys Rev B. 2006; 74: 174519.
Sanna A, Pittalis S, Dewhurst JK, Monni M, Sharma S, Ummarino G, Massidda S, Gross EKU. Phononic self-energy effects and superconductivity in CaC6. Phys Rev B. 2012; 85: 184514.
Torsello D, Ummarino GA, Gozzelino L, Tamegai T, Ghigo G. Comprehensive Eliashberg analysis of microwave conductivity and penetration depth of K-, Co-, and P-substituted BaFe2 As2. Phys Rev B. 2019; 99: 134518.
Torsello D, Ummarino GA, Bekaert J, Gozzelino L, Gerbaldo R, Tanatar MA, Canfield PC, Prozorov R, Ghigo G. Tuning the Intrinsic Anisotropy with Disorder in the CaKFe4As4 Superconductor. Phys Rev Appl. 2020; 13: 064046.
Ghigo G, Ummarino GA, L. Gozzelino, and T. Tamegai. Phys. Rev. B 96, 014501 (2017).
Torsello D, Cho K, Joshi KR, Ghimire S, Ummarino GA, Nusran NM, Tanatar MA, Meier WR, Xu M, Budko SL, Canfield PC, Ghigo G, Prozorov R. Tuning the Intrinsic Anisotropy with Disorder in the CaKFe4As4 Superconductor. Phys Rev B . 2019;100: 094513.
Ummarino GA. Mathematical and Physical Properties of Three-Band s± Eliashberg Theory for Iron Pnictides. Magnetochemistry. 2023;9: 28.
Ummarino GA. Superconductive critical temperature of Pb/Ag heterostructures. Physica C. 2020; 568:1353566.
Ummarino GA, Piatti E, Daghero D, Gonnelli RS, Sklyadneva YI, Chulkov EV, Heid R. Proximity Eliashberg theory of electrostatic field-effect doping in superconducting films. Physical Review B. 2017; 96: 064509.
Ummarino GA, Romanin D. Theoretical Explanation of Electric Field-Induced Superconductive Critical Temperature Shifts in Indium Thin Films. Phys Status Solidi B. 2020; 2020;1900651.
Ummarino GA, Romanin D. Proximity two bands Eliashberg theory of electrostatic field-effect doping in a superconducting film of MgB2. J Phys. Condens Matter. 2019; 31: 024001.
Gonnelli RS, A. Calzolari, D. Daghero, L. Natale, G.A. Ummarino, V.A. Stepanov, M. Ferretti, European Physical Journal B. 2001; 22: 41.
Alikhanzadeh-Arani S, Salavati-Niasari M, Almasi-Kashi M. Influence of the utilized precursors on the morphology and properties of YBa2Cu3O7−y superconducting nanostructures. Physica C Superconductivity. 2013; 488: 30.
Alikhanzadeh-Arani S, Salavati-Niasari M, Almasi-Kashi M. Growth of the Dysprosium–Barium–Copper Oxide Superconductor Nanoclusters in Biopolymer Gels. Journal of Inorganic and Organometallic Polymers and Materials. 2012; 22: 1081..
Alikhanzadeh-Arani S, Kargar M, Salavati-Niasari M. Biopolymer-protected GdBa2Cu3O7−x nanoparticles: Morphology, structure and superconducting properties. Journal of Alloys and Compounds. 2014; 614: 35.
Kargar M, Alikhanzadeh-Arani S, Pezeshki-Nejad Z, Salavati-Niasari M. Improvement of the Superconducting Properties of Ho123 Nanoparticles via a Polymer Mediated Sol-Gel Method. Journal of Superconductivity and Novel Magnetism. 2015; 28: 13.
Ummarino GA. Standard Behaviour of Bi2Sr2CaCu2O8+δ Overdoped. Condens Matter. 2021; 6: 13.
Rieck CT, Fay D, Tewordt L. Energy gap, Tc and density of states in high-temperature superconductors for retarded s- and d-wave interactions. Phys Rev B. 1989; 41: 7289.
Jiang C, Carbotte JP, Dynes RC. Boson structure in the quasiparticle density of states of superconductors with nodes in the gap. Phys Rev B. 1993; 47: 5325.
Zasadzinski JF, Coffey L, Romano P, Yusof Z. Tunneling spectroscopy of Bi2Sr2CaCu2O8+δ: Eliashberg analysis of the spectral dip feature. Phys Rev B. 2003; 68: 180504(R).
Ahmadi O, Coffey L, Zasadzinski JF, Miyakawa N, Ozyuzer L. Eliashberg Analysis of Tunneling Experiments: Support for the Pairing Glue Hypothesis in Cuprate Superconductors. Phys Rev Lett. 2011; 106: 167005.
Yu G, Li Y, Motoyama EM, Greven M. A universal relationship between magnetic resonance and superconducting gap in unconventional superconductors. Nature Physics. 2009; 5: 873.
Ghigo G, Ummarino GA, Gozzelino L, Gerbaldo R, Laviano F, Torsello D, Tamegai T. Effects of disorder induced by heavy-ion irradiation on (Ba1−x Kx )Fe2As2 single crystals, within the three-band Eliashberg s± wave model. Sci Rep 2017; 7: 13029.
Ummarino GA, Gonnelli RS. Breakdown of Migdal’s theorem and intensity of electron-phonon coupling in high-Tc superconductors. Phys Rev B. 1997; 56: 14279.
Ummarino GA, Gonnelli RS. Real-axis direct solution of the d-wave Eliashberg equations and the tunneling density of states in optimally doped Bi2Sr2CaCu2O8+x. Physica C Superconductivity. 1999; 328: 189.
Ummarino GA, Gonnelli RS. Two-band Eliashberg equations and the experimental Tc of the diboride Mg1−xAlxB2. Physica C Superconductivity. 2000; 295: 341-348.
Ummarino GA, Gonnelli RS, Daghero D. Tunneling conductance of SIN junctions with different gap symmetries and non-magnetic impurities by direct solution of real-axis Eliashberg equations. Physica C Superconductivity. 2002; 377: 292.
Cappelluti E, Ummarino GA. Strong-coupling properties of unbalanced Eliashberg superconductors. Phys Rev B. 2007; 76: 104522.
Jutier F, Ummarino GA, Griveau JC, Wastin F, Colineau E, Rebizant J, Magnani N, Caciuffo R. Possible mechanism of superconductivity in PuCoGa5 probed by self-irradiation damage. Phys Rev B. 2008; 77: 024521.
Ummarino GA, Caciuffo R, Chudo H, Kambe S. Energy scale of the electron-boson spectral function and superconductivity in NpPd5Al2. Phys Rev B. 2010; 82: 104510.
Varelogiannis G. Solid State Communications. 1998; 107: 427.
Musaelian KA, Betouras J, Chubukov AV, Joynt R. Mixed-symmetry superconductivity in two-dimensional Fermi liquids. Phys Rev B. 1996; 53: 3598.
Bok JM, Bae JJ, Choi HY, Varma CM, Zhang W, He J, Zhang Y, Yu L, Zhou XJ. Quantitative determination of pairing interactions for high-temperature superconductivity in cuprates. Sci Adv. 2016; 2: 1501329.
Ummarino GA. Multiband s± Eliashberg theory and temperature-dependent spin-resonance energy in iron pnictide superconductors. Phys Rev B. 2011; 83: 092508.
Vidberg H, Serene J. Solving the Eliashberg equations by means ofN-point Padé approximants. J Low Temp Phys. 1977; 29: 179.
McMillan WL. Transition Temperature of Strong-Coupled Superconductors. Phys Rev. 1968; 167: 331.
Hwang J, Schachinger E, Carbotte JP, Gao F, Tanner DB, Timusk T. Bosonic Spectral Density of Epitaxial Thin-Film La1.83Sr0.17CuO4 Superconductors from Infrared Conductivity Measurements. Phys Rev Lett. 2008; 100:137005.
Sato NK, Aso N, Miyake K, Shiina R, Thalmeier P, Varelogiannis G, Geibel C, Steglich F, Fulde P, Komatsubara T. Strong coupling between local moments and superconducting ‘heavy’ electrons in UPd2Al3. Nature. 2001; 410: 340.
Szewczyk KA, Szczesniak R, Szczesniak D. Annalen der Physik. 2018; 530: 1800139.