TY - JOUR
T1 - Exotic s-wave superconductivity in alkali-doped fullerides
AU - Nomura, Yusuke
AU - Sakai, Shiro
AU - Capone, Massimo
AU - Arita, Ryotaro
N1 - Funding Information:
We would like to thank K Nakamura for helpful discussions and for the technical support. We acknowledge fruitful discussions with Y Iwasa, Y Kasahara, K Prassides, P Werner, T Ayral, M Kim, A Georges, Y Murakami, H Shinaoka, T Kosugi, N Parragh, G Sangiovanni, M Imada, A Oshiyama, A Fujimori, P Wzietek, H Alloul, M Fabrizio, E Tosatti, and G Giovannetti. YN, SS, and RA were supported by Grantin-Aid for JSPS Fellows (no. 12J08652), Grant-in-Aid for Scientific Research (no. 26800179), Grant-in-Aid for Scientific Research (no. 15H03696) from Japan Society for the Promotion of Science (JSPS), Japan, respectively. MC is supported by FP7/European Research Council (ERC) through the Starting Grant SUPERBAD (grant agreement no. 240524) and by the EU-Japan Project LEMSUPER (grant agreement no. 283214).
Publisher Copyright:
© 2016 IOP Publishing Ltd.
PY - 2016/3/14
Y1 - 2016/3/14
N2 - Alkali-doped fullerides (A3C60 with A = K, Rb, Cs) show a surprising phase diagram, in which a high transition-temperature (Tc) s-wave superconducting state emerges next to a Mott insulating phase as a function of the lattice spacing. This is in contrast with the common belief that Mott physics and phonon-driven s-wave superconductivity are incompatible, raising a fundamental question on the mechanism of the high-Tc superconductivity. This article reviews recent ab initio calculations, which have succeeded in reproducing comprehensively the experimental phase diagram with high accuracy and elucidated an unusual cooperation between the electron-phonon coupling and the electron-electron interactions leading to Mott localization to realize an unconventional s-wave superconductivity in the alkali-doped fullerides. A driving force behind the exotic physics is unusual intramolecular interactions, characterized by the coexistence of a strongly repulsive Coulomb interaction and a small effectively negative exchange interaction. This is realized by a subtle energy balance between the coupling with the Jahn-Teller phonons and Hund's coupling within the C60 molecule. The unusual form of the interaction leads to a formation of pairs of up- and down-spin electrons on the molecules, which enables the s-wave pairing. The emergent superconductivity crucially relies on the presence of the Jahn-Teller phonons, but surprisingly benefits from the strong correlations because the correlations suppress the kinetic energy of the electrons and help the formation of the electron pairs, in agreement with previous model calculations. This confirms that the alkali-doped fullerides are a new type of unconventional superconductors, where the unusual synergy between the phonons and Coulomb interactions drives the high-Tc superconductivity.
AB - Alkali-doped fullerides (A3C60 with A = K, Rb, Cs) show a surprising phase diagram, in which a high transition-temperature (Tc) s-wave superconducting state emerges next to a Mott insulating phase as a function of the lattice spacing. This is in contrast with the common belief that Mott physics and phonon-driven s-wave superconductivity are incompatible, raising a fundamental question on the mechanism of the high-Tc superconductivity. This article reviews recent ab initio calculations, which have succeeded in reproducing comprehensively the experimental phase diagram with high accuracy and elucidated an unusual cooperation between the electron-phonon coupling and the electron-electron interactions leading to Mott localization to realize an unconventional s-wave superconductivity in the alkali-doped fullerides. A driving force behind the exotic physics is unusual intramolecular interactions, characterized by the coexistence of a strongly repulsive Coulomb interaction and a small effectively negative exchange interaction. This is realized by a subtle energy balance between the coupling with the Jahn-Teller phonons and Hund's coupling within the C60 molecule. The unusual form of the interaction leads to a formation of pairs of up- and down-spin electrons on the molecules, which enables the s-wave pairing. The emergent superconductivity crucially relies on the presence of the Jahn-Teller phonons, but surprisingly benefits from the strong correlations because the correlations suppress the kinetic energy of the electrons and help the formation of the electron pairs, in agreement with previous model calculations. This confirms that the alkali-doped fullerides are a new type of unconventional superconductors, where the unusual synergy between the phonons and Coulomb interactions drives the high-Tc superconductivity.
KW - alkali-doped fullerides
KW - electron correlations
KW - electron-phonon interactions
KW - unconventional superconductivity
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U2 - 10.1088/0953-8984/28/15/153001
DO - 10.1088/0953-8984/28/15/153001
M3 - Review article
AN - SCOPUS:84963852840
SN - 0953-8984
VL - 28
JO - Journal of Physics Condensed Matter
JF - Journal of Physics Condensed Matter
IS - 15
M1 - 153001
ER -