Colloquium: High pressure and road to room temperature superconductivity
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[1] Xiaoli Huang,et al. High-temperature superconductivity in sulfur hydride evidenced by alternating-current magnetic susceptibility , 2019, National science review.
[2] Ab-initio theory of superconductivity - I: Density functional formalism and approximate functionals , 2004, cond-mat/0408685.
[3] W. Meissner,et al. Ein neuer Effekt bei Eintritt der Supraleitfähigkeit , 1933, Naturwissenschaften.
[4] A. P. Drozdov,et al. Conventional superconductivity at 190 K at high pressures , 2014, 1412.0460.
[5] S. Wolf,et al. Colloquium: Electron-lattice interaction and its impact on highTcsuperconductivity , 2009 .
[6] W. L. Mcmillan. TRANSITION TEMPERATURE OF STRONG-COUPLED SUPERCONDUCTORS. , 1968 .
[7] M. Calandra,et al. Anharmonic free energies and phonon dispersions from the stochastic self-consistent harmonic approximation: Application to platinum and palladium hydrides , 2013, 1311.3083.
[8] L. Gor’kov,et al. Role of striction at magnetic and structural transitions in iron pnictides , 2008, 0812.4277.
[9] H. E. Hoenig,et al. Two-Band Superconductivity in Nb-Doped SrTi O 3 , 1980 .
[10] M. Eremets,et al. Conductive dense hydrogen. , 2011, Nature materials.
[11] B. T. Geĭlikman,et al. Transition temperature and energy gap for superconductors with strong coupling , 1975 .
[12] Yanming Ma,et al. High-pressure hydrogen sulfide from first principles: a strongly anharmonic phonon-mediated superconductor. , 2015, Physical review letters.
[13] A. Durajski,et al. Superconductivity well above room temperature in compressed MgH6 , 2016 .
[14] Yanming Ma,et al. Superconducting high pressure phase of germane. , 2008, Physical review letters.
[15] M. Lorenz,et al. Evidence for strong electron–phonon interaction from inelastic tunneling of Cooper pairs in c-direction in Bi2Sr2CaCu2O8 break junctions , 1999 .
[16] L. Gor’kov. Quantum oscillations in the vortex state of underdoped YBa2Cu3O6.5and other multiband superconductors , 2012 .
[17] X. Xi,et al. Electron tunneling into thin films of Y1Ba2Cu3O7 , 1988 .
[18] A. Bianconi,et al. Breakdown of the Migdal approximation at Lifshitz transitions with giant zero-point motion in the H3S superconductor , 2015, Scientific Reports.
[19] R. Dynes. McMillan's equation and the Tc of superconductors , 1972 .
[20] A. P. Drozdov,et al. Observation of superconductivity in hydrogen sulfide from nuclear resonant scattering , 2016, Science.
[21] A. Durajski,et al. Non-BCS thermodynamic properties of H2S superconductor , 2014, 1412.8640.
[22] L. Gor’kov. Superconducting transition temperature: Interacting Fermi gas and phonon mechanisms in the nonadiabatic regime , 2015, 1509.08488.
[23] Russell J. Hemley,et al. Ultrahigh-pressure transitions in solid hydrogen , 1994 .
[24] N. Ashcroft. Hydrogen dominant metallic alloys: high temperature superconductors? , 2004, Physical review letters.
[25] G. Caglioti,et al. Crystal Dynamics of Lead. I. Dispersion Curves at 100°K , 1962 .
[26] C. Heil,et al. Superconductivity in metastable phases of phosphorus-hydride compounds under high pressure , 2015, 1512.02132.
[27] V. Kresin. On the critical temperature for any strength of the electron-phonon coupling , 1987 .
[28] Yanming Ma,et al. Perspective: crystal structure prediction at high pressures. , 2014, The Journal of chemical physics.
[29] A. Bianconi,et al. Lifshitz transitions and zero point lattice fluctuations in sulfur hydride showing near room temperature superconductivity , 2015, 1507.01093.
[30] Pietronero,et al. Nonadiabatic superconductivity: Electron-phonon interaction beyond Migdal's theorem. , 1995, Physical review letters.
[31] A. P. Drozdov,et al. Conventional superconductivity at 203 kelvin at high pressures in the sulfur hydride system , 2015, Nature.
[32] R. Arita,et al. Possible "Magnéli" Phases and Self-Alloying in the Superconducting Sulfur Hydride. , 2015, Physical review letters.
[33] Yanming Ma,et al. Quantum hydrogen-bond symmetrization in the superconducting hydrogen sulfide system , 2016, Nature.
[34] Yanming Ma,et al. Pressure-stabilized superconductive yttrium hydrides , 2015, Scientific Reports.
[35] Jian Lv,et al. Materials discovery at high pressures , 2017 .
[36] C. Hellberg,et al. What superconducts in sulfur hydrides under pressure and why , 2014, 1501.00196.
[37] N. Ashcroft,et al. METALLIC HYDROGEN: A HIGH-TEMPERATURE SUPERCONDUCTOR. , 1968 .
[38] B. T. Geĭlikman. The adiabatic approximation and Fröhlich model in the theory of metals , 1971 .
[39] S. Goedecker. Minima hopping: an efficient search method for the global minimum of the potential energy surface of complex molecular systems. , 2004, The Journal of chemical physics.
[40] J. Carbotte,et al. Properties of boson-exchange superconductors , 1990 .
[41] M. Mehl,et al. Cubic H 3 S around 200 GPa: An atomic hydrogen superconductor stabilized by sulfur , 2015, 1501.03950.
[42] John W. Wilkins,et al. Effective Tunneling Density of States in Superconductors , 1963 .
[43] A. Bianconi,et al. Superconductivity above the lowest Earth temperature in pressurized sulfur hydride , 2015, 1510.05264.
[44] Artem R. Oganov,et al. Hydrogen sulfide at high pressure: change in stoichiometry , 2016 .
[45] Hui Wang,et al. Compressed sodalite-like MgH6 as a potential high-temperature superconductor , 2015 .
[46] H. Mao,et al. Raman Spectroscopy of Dense H2O and the Transition to Symmetric Hydrogen Bonds , 1999 .
[47] R. A. Silverman,et al. Methods of Quantum Field Theory in Statistical Physics , 1964 .
[48] Yanming Ma,et al. The metallization and superconductivity of dense hydrogen sulfide. , 2014, The Journal of chemical physics.
[49] H. Eisaki,et al. Interplay of electron–lattice interactions and superconductivity in Bi2Sr2CaCu2O8+δ , 2006, Nature.
[50] R. Dynes,et al. Transition temperature of strong-coupled superconductors reanalyzed , 1975 .
[51] W. Pickett,et al. Van Hove singularities and spectral smearing in high-temperature superconducting H 3 S , 2015, 1508.04491.
[52] E. Wigner,et al. On the Possibility of a Metallic Modification of Hydrogen , 1935 .
[53] R. Arita,et al. Effect of Van Hove singularities on high- T c superconductivity in H 3 S , 2015, 1512.07365.
[54] Klein,et al. Anharmonicity and the inverse isotope effect in the palladium-hydrogen system. , 1992, Physical review. B, Condensed matter.
[55] E. Gross,et al. High temperature superconductivity in sulfur and selenium hydrides at high pressure , 2015, 1501.06336.
[56] Bingbing Liu,et al. Superconducting high-pressure phases of disilane , 2010, Proceedings of the National Academy of Sciences.
[57] Stefano de Gironcoli,et al. Phonons and related crystal properties from density-functional perturbation theory , 2000, cond-mat/0012092.
[58] S. Nakajima,et al. On the Electron-Phonon Interaction in Normal Metals. I , 1963 .
[59] J. S. Tse,et al. Superconductivity in Hydrogen Dominant Materials: Silane , 2008, Science.
[60] K. Müller,et al. Possible highTc superconductivity in the Ba−La−Cu−O system , 1986 .
[61] Da Li,et al. Pressure-induced metallization of dense (H2S)2H2 with high-Tc superconductivity , 2014, Scientific Reports.
[62] M. Cantoni,et al. Superconductivity above 130 K in the Hg–Ba–Ca–Cu–O system , 1993, Nature.
[63] Hui Wang,et al. Superconductive sodalite-like clathrate calcium hydride at high pressures , 2012, Proceedings of the National Academy of Sciences.
[64] Yanming Ma,et al. Hydrogen Clathrate Structures in Rare Earth Hydrides at High Pressures: Possible Route to Room-Temperature Superconductivity. , 2017, Physical review letters.
[65] B. Ganguly. High frequency local modes, superconductivity and anomalous isotope effect in PdH(D) systems , 1973 .
[66] Stefano de Gironcoli,et al. QUANTUM ESPRESSO: a modular and open-source software project for quantum simulations of materials , 2009, Journal of physics. Condensed matter : an Institute of Physics journal.
[67] Chu,et al. Superconductivity up to 164 K in HgBa2Cam-1CumO2m+2+ delta (m=1, 2, and 3) under quasihydrostatic pressures. , 1994, Physical review. B, Condensed matter.
[68] U. Chicago,et al. Stable high-pressure phases in the H-S system determined by chemically reacting hydrogen and sulfur , 2017, 1702.02522.
[69] B. Stritzker,et al. Superconductivity in the palladium-hydrogen and the palladium-deuterium systems , 1972 .
[70] W. L. Mcmillan,et al. LEAD PHONON SPECTRUM CALCULATED FROM SUPERCONDUCTING DENSITY OF STATES , 1965 .
[71] L. Gor’kov,et al. Pressure and high-Tc superconductivity in sulfur hydrides , 2016, Scientific Reports.
[72] S. Louie,et al. Superconducting transition temperatures for weak and strong electron-phonon coupling , 1977 .
[73] D. Ceperley,et al. The Properties of Hydrogen and Helium Under Extreme Conditions , 2011 .
[74] L. Cooper,et al. Theory of superconductivity , 1957 .
[75] H. Gutfreund,et al. Superconducting state in strong coupling , 1984 .
[76] H. Suhl,et al. Bardeen-Cooper-Schrieffer Theory of Superconductivity in the Case of Overlapping Bands , 1959 .
[77] A. Chubukov,et al. Quantum-critical pairing in electron-doped cuprates , 2013, 1306.2241.
[78] W. Heisenberg,et al. Zur Quantentheorie der Molekeln , 1924 .
[79] Takahiro Ishikawa,et al. Crystal Structure of the Superconducting Phase of Sulfur Hydride , 2015, Nature Physics.
[80] C. Heil,et al. Influence of bonding on superconductivity in high-pressure hydrides , 2015, 1507.02522.