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Theory of multipole fluctuation medi...
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SpringerLink (Online service)
Theory of multipole fluctuation mediated superconductivity and multipole phaseimportant roles of many body effects and strong spin-orbit coupling /
紀錄類型:
書目-電子資源 : Monograph/item
正題名/作者:
Theory of multipole fluctuation mediated superconductivity and multipole phaseby Rina Tazai.
其他題名:
important roles of many body effects and strong spin-orbit coupling /
作者:
Tazai, Rina.
出版者:
Singapore :Springer Singapore :2021.
面頁冊數:
xvii, 118 p. :ill., digital ;24 cm.
Contained By:
Springer Nature eBook
標題:
Superconductivity.
電子資源:
https://doi.org/10.1007/978-981-16-1026-4
ISBN:
9789811610264$q(electronic bk.)
Theory of multipole fluctuation mediated superconductivity and multipole phaseimportant roles of many body effects and strong spin-orbit coupling /
Tazai, Rina.
Theory of multipole fluctuation mediated superconductivity and multipole phase
important roles of many body effects and strong spin-orbit coupling /[electronic resource] :by Rina Tazai. - Singapore :Springer Singapore :2021. - xvii, 118 p. :ill., digital ;24 cm. - Springer theses,2190-5053. - Springer theses..
General Introduction -- Functional Renormalization Group (fRG) study -- Cooperation of el-ph and AFM fluctuations for SC state -- S-wave superconductivity in CeCu2Si2 -- Multipole phase.
A strong spin-orbit interaction and Coulomb repulsion featuring strongly correlated d- and f-electron systems lead to various exotic phase transition including unconventional superconductivity and magnetic multipole order. However, their microscopic origins are long standing problem since they could not be explained based on conventional Migdal-Eliashberg theorem. The book focuses on many-body correlation effects beyond conventional theory for the d- and f-electron systems, and theoretically demonstrates the correlations to play significant roles in "mode-coupling" among multiple quantum fluctuations, which is called U-VC here. The following key findings are described in-depth: (i) spin triplet superconductivity caused by U-VC, (ii) being more important U-VC in f-electron systems due to magnetic multipole degrees of freedom induced by a spin-orbit interaction, and (iii) s-wave superconductivity stabilized cooperatively by antiferromagnetic fluctuations and electron-phonon interaction contrary to conventional understanding. The book provides meaningful step for revealing essential roles of many-body effects behind long standing problems in strongly correlated materials.
ISBN: 9789811610264$q(electronic bk.)
Standard No.: 10.1007/978-981-16-1026-4doiSubjects--Topical Terms:
205158
Superconductivity.
LC Class. No.: QC611.92 / .T39 2021
Dewey Class. No.: 537.623
Theory of multipole fluctuation mediated superconductivity and multipole phaseimportant roles of many body effects and strong spin-orbit coupling /
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General Introduction -- Functional Renormalization Group (fRG) study -- Cooperation of el-ph and AFM fluctuations for SC state -- S-wave superconductivity in CeCu2Si2 -- Multipole phase.
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A strong spin-orbit interaction and Coulomb repulsion featuring strongly correlated d- and f-electron systems lead to various exotic phase transition including unconventional superconductivity and magnetic multipole order. However, their microscopic origins are long standing problem since they could not be explained based on conventional Migdal-Eliashberg theorem. The book focuses on many-body correlation effects beyond conventional theory for the d- and f-electron systems, and theoretically demonstrates the correlations to play significant roles in "mode-coupling" among multiple quantum fluctuations, which is called U-VC here. The following key findings are described in-depth: (i) spin triplet superconductivity caused by U-VC, (ii) being more important U-VC in f-electron systems due to magnetic multipole degrees of freedom induced by a spin-orbit interaction, and (iii) s-wave superconductivity stabilized cooperatively by antiferromagnetic fluctuations and electron-phonon interaction contrary to conventional understanding. The book provides meaningful step for revealing essential roles of many-body effects behind long standing problems in strongly correlated materials.
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