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Polarons and spin-orbit (SO) coupling are distinct quantum effects that play a critical role in charge transport and spin-orbitronics.
“Über die bewegung der elektronen in kristalgitter”
L.. Landau · 1933
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“Über die bewegung der elektronen in kristalgitter”
L.. Landau · 1933
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“Relaxation Effects in Nuclear Magnetic Resonance Absorption”
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“Relaxation Effects in Nuclear Magnetic Resonance Absorption”
N. Bloembergen, E.. Purcell and R.. Pound · 1948
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“Spin-Lattice Relaxation in Imperfect Cubic Crystals and in Non-cubic Crystals”
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“Spin-Lattice Relaxation in Imperfect Cubic Crystals and in Non-cubic Crystals”
E.R. Andrew and D.P. Tunstall · 1961
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“Electron correlations in narrow energy bands”
J. Hubbard and Brian Flowers · 1963
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“Electron correlations in narrow energy bands”
J. Hubbard and Brian Flowers · 1963
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“Nuclear quadrupole effects in « high magnetic fields » in liquids”
G. Bonera and A. Rigamonti · 1964
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“Nuclear quadrupole effects in « high magnetic fields » in liquids”
G. Bonera and A. Rigamonti · 1964
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“Studies of small-polaron motion IV. Adiabatic theory of the Hall effect”
David Emin and T Holstein · 1969
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“Studies of small-polaron motion IV. Adiabatic theory of the Hall effect”
David Emin and T Holstein · 1969
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“Jahn-Teller effect in itinerant electron systems: The Jahn-Teller polaron”
K.. Höck, H. Nickisch and H. Thomas · 1983
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“Principles of High Resolution NMR in Solids”
Michael Mehring · 1983
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“Principles of High Resolution NMR in Solids”
Michael Mehring · 1983
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“Jahn-Teller effect in itinerant electron systems: The Jahn-Teller polaron”
K.. Höck, H. Nickisch and H. Thomas · 1983
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“Principles of High Resolution NMR in Solids”
Michael Mehring · 1983
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“Principles of High Resolution NMR in Solids”
Michael Mehring · 1983
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“Self-trapping of a small polaron as a nonlinear process: The relaxation of a strongly coupled self-consistent spin-boson system”
D. Feinberg and J. Ranninger · 1986
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“Self-trapping of a small polaron as a nonlinear process: The relaxation of a strongly coupled self-consistent spin-boson system”
D. Feinberg and J. Ranninger · 1986
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“Electron transfer reactions in chemistry. Theory and experiment”
Rudolph. Marcus · 1993
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“Electron transfer reactions in chemistry. Theory and experiment”
Rudolph. Marcus · 1993
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“Polarons and Bipolarons”
A Alexandrov and N Mott · 1996
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“Polarons and Bipolarons”
A Alexandrov and N Mott · 1996
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“Evidence for polaronic supercarriers in the copper oxide superconductors La 2 − x Sr x CuO 4 \mathrm{La_{2-x}Sr_{x}CuO_{4}} ”
Guo-meng Zhao, M.. Hunt, H. Keller and K.. Müller · 1997
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“Polaron transport and lattice dynamics in colossal-magnetoresistance manganites”
J.. Lee and B.. Min · 1997
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“Evidence for magnetic polarons in the magnetoresistive perovskites”
J.. Teresa et al · 1997
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“Evidence for polaronic supercarriers in the copper oxide superconductors La 2 − x Sr x CuO 4 \mathrm{La_{2-x}Sr_{x}CuO_{4}} ”
Guo-meng Zhao, M.. Hunt, H. Keller and K.. Müller · 1997
Earlier work this paper cites.
“Polaron transport and lattice dynamics in colossal-magnetoresistance manganites”
J.. Lee and B.. Min · 1997
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“Evidence for magnetic polarons in the magnetoresistive perovskites”
J.. Teresa et al · 1997
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“Metal-insulator transitions”
Masatoshi Imada, Atsushi Fujimori and Yoshinori Tokura · 1998
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“Ab initio calculations of quasiparticle band structure in correlated systems: LDA++ approach”
A.. Lichtenstein and M.. Katsnelson · 1998
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“Metal-insulator transitions”
Masatoshi Imada, Atsushi Fujimori and Yoshinori Tokura · 1998
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“Ab initio calculations of quasiparticle band structure in correlated systems: LDA++ approach”
A.. Lichtenstein and M.. Katsnelson · 1998
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“Fully unconstrained noncollinear magnetism within the projector augmented-wave method”
D. Hobbs, G. Kresse and J. Hafner · 2000
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“Studies of Polaron Motion: Part II. The “Small” Polaron”
T. Holstein · 2000
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“Fully unconstrained noncollinear magnetism within the projector augmented-wave method”
D. Hobbs, G. Kresse and J. Hafner · 2000
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“Studies of Polaron Motion: Part II. The “Small” Polaron”
T. Holstein · 2000
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“Ultraslow Polaron Dynamics in Low-Doped Manganites from 139
G. Allodi et al · 2001
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“Ultraslow Polaron Dynamics in Low-Doped Manganites from 139
G. Allodi et al · 2001
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“Crystal growth of Ba 2 MOsO 6 \mathrm{Ba_{2}MOsO_{6}} (M=Li, Na) from reactive hydroxide fluxes”
Katharine Stitzer, Mark Smith and Hans-Conrad zur Loye · 2002
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“Crystal growth of Ba 2 MOsO 6 \mathrm{Ba_{2}MOsO_{6}} (M=Li, Na) from reactive hydroxide fluxes”
Katharine Stitzer, Mark Smith and Hans-Conrad zur Loye · 2002
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“Polaron Crossover and Bipolaronic Metal-Insulator Transition in the Half-Filled Holstein Model”
M. Capone and S. Ciuchi · 2003
Earlier work this paper cites.
“Polaron Crossover and Bipolaronic Metal-Insulator Transition in the Half-Filled Holstein Model”
M. Capone and S. Ciuchi · 2003
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“Spintronics: Fundamentals and applications”
Igor Žutić, Jaroslav Fabian and S. Das · 2004
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“Spintronics: Fundamentals and applications”
Igor Žutić, Jaroslav Fabian and S. Das · 2004
Earlier work this paper cites.
“The Jahn-Teller Effect”
Isaac Bersuker · 2006
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“The Jahn-Teller Effect”
Isaac Bersuker · 2006
Earlier work this paper cites.
“The Jahn-Teller Effect”
Isaac Bersuker · 2006
Earlier work this paper cites.
“The Jahn-Teller Effect”
Isaac Bersuker · 2006
Earlier work this paper cites.
“Trapping, self-trapping and the polaron family”
A Stoneham et al · 2007
Earlier work this paper cites.
“Ferromagnetism in the Mott Insulator Ba 2 NaOsO 6 {\mathrm{Ba}}_{2}{\mathrm{NaOsO}}_{6} ”
A.. Erickson et al · 2007
Earlier work this paper cites.
“Electron transport via polaron hopping in bulk TiO 2 \mathrm{TiO_{2}} : A density functional theory characterization”
N. Deskins and Michel Dupuis · 2007
Earlier work this paper cites.
“Self-consistency over the charge density in dynamical mean-field theory: A linear muffin-tin implementation and some physical implications”
L.. Pourovskii, B. Amadon, S. Biermann and A. Georges · 2007
Earlier work this paper cites.
“Trapping, self-trapping and the polaron family”
A Stoneham et al · 2007
Earlier work this paper cites.
“Ferromagnetism in the Mott Insulator Ba 2 NaOsO 6 {\mathrm{Ba}}_{2}{\mathrm{NaOsO}}_{6} ”
A.. Erickson et al · 2007
Earlier work this paper cites.
“Electron transport via polaron hopping in bulk TiO 2 \mathrm{TiO_{2}} : A density functional theory characterization”
N. Deskins and Michel Dupuis · 2007
Cited alongside, same era.
“Self-consistency over the charge density in dynamical mean-field theory: A linear muffin-tin implementation and some physical implications”
L.. Pourovskii, B. Amadon, S. Biermann and A. Georges · 2007
Cited alongside, same era.
“Reduced and n-Type Doped TiO 2 \mathrm{TiO_{2}} : Nature of Ti 3 + \mathrm{Ti^{3+}} Species”
Cristiana Di, Gianfranco Pacchioni and Annabella Selloni · 2009
Cited alongside, same era.
“Mott Insulators in the Strong Spin-Orbit Coupling Limit: From Heisenberg to a Quantum Compass and Kitaev Models”
G. Jackeli and G. Khaliullin · 2009
Cited alongside, same era.
“Polaronic Hole Trapping in Doped BaBiO 3 {\mathrm{BaBiO}}_{3} ”
C. Franchini, G. Kresse and R. Podloucky · 2009
Cited alongside, same era.
“First principles calculations of the electric field gradient tensors of Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} , a Mott insulator with strong spin orbit coupling”
Rong Cong, Ravindra Nanguneri, Brenda Rubenstein and V Mitrović · 2020
Later among the works it cites.
“Doping Evolution of the Local Electronic and Structural Properties of the Double Perovskite Ba 2 Na 1 − x Ca x OsO 6 \mathrm{Ba_{2}Na_{1-x}Ca_{x}OsO_{6}} ”
Jagadesh Kesavan et al · 2020
Later among the works it cites.
“Jahn-Teller Effect and Spin-Orbit Coupling: Friends or Foes?”
Sergey. Streltsov and Daniel. Khomskii · 2020
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“2D materials for spintronic devices”
Ethan. Ahn · 2020
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“WIEN2k: An APW+lo program for calculating the properties of solids”
Peter Blaha et al · 2020
Later among the works it cites.
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“Reduced and n-Type Doped TiO 2 \mathrm{TiO_{2}} : Nature of Ti 3 + \mathrm{Ti^{3+}} Species”
Cristiana Di, Gianfranco Pacchioni and Annabella Selloni · 2009
Cited alongside, same era.
“Mott Insulators in the Strong Spin-Orbit Coupling Limit: From Heisenberg to a Quantum Compass and Kitaev Models”
G. Jackeli and G. Khaliullin · 2009
Cited alongside, same era.
“Polaronic Hole Trapping in Doped BaBiO 3 {\mathrm{BaBiO}}_{3} ”
C. Franchini, G. Kresse and R. Podloucky · 2009
Cited alongside, same era.
“Advances in Polaron Physics”
Alexandre. Alexandrov and Jozef. Devreese · 2010
Cited alongside, same era.
“Mott physics and band topology in materials with strong spin–orbit interaction”
Dmytro Pesin and Leon Balents · 2010
Cited alongside, same era.
“Advances in Polaron Physics”
Alexandre. Alexandrov and Jozef. Devreese · 2010
Cited alongside, same era.
“Mott physics and band topology in materials with strong spin–orbit interaction”
Dmytro Pesin and Leon Balents · 2010
Cited alongside, same era.
“Jahn-Teller Effect and Spin-Orbit Coupling: Friends or Foes?”
Sergey. Streltsov and Daniel. Khomskii · 2020
Later among the works it cites.
“Localized spin-orbit polaron in magnetic Weyl semimetal Co 3 Sn 2 S 2 ”
Yuqing Xing et al · 2020
Later among the works it cites.
“First principles calculations of the electric field gradient tensors of Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} , a Mott insulator with strong spin orbit coupling”
Rong Cong, Ravindra Nanguneri, Brenda Rubenstein and V Mitrović · 2020
Later among the works it cites.
“Doping Evolution of the Local Electronic and Structural Properties of the Double Perovskite Ba 2 Na 1 − x Ca x OsO 6 \mathrm{Ba_{2}Na_{1-x}Ca_{x}OsO_{6}} ”
Jagadesh Kesavan et al · 2020
Later among the works it cites.
“Jahn-Teller Effect and Spin-Orbit Coupling: Friends or Foes?”
Sergey. Streltsov and Daniel. Khomskii · 2020
Later among the works it cites.
“2D materials for spintronic devices”
Ethan. Ahn · 2020
Later among the works it cites.
“WIEN2k: An APW+lo program for calculating the properties of solids”
Peter Blaha et al · 2020
Later among the works it cites.
“Jahn-Teller Effect and Spin-Orbit Coupling: Friends or Foes?”
Sergey. Streltsov and Daniel. Khomskii · 2020
Later among the works it cites.
“Polarons in materials”
Cesare Franchini, Michele Reticcioli, Martin Setvin and Ulrike Diebold · 2021
Later among the works it cites.
“Visualization of dynamic polaronic strain fields in hybrid lead halide perovskites”
Burak Guzelturk et al · 2021
Later among the works it cites.
“Small polaron transport in cathode materials of rechargeable ion batteries”
Huu Luong, Thien Tran, Viet Phung and Van Dinh · 2021
Later among the works it cites.
“Interplay between multipolar spin interactions, Jahn-Teller effect, and electronic correlation in a J eff = 3 2 J_{\text{eff}}=\frac{3}{2} insulator”
Dario Fiore et al · 2021
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“Orbital Effects in Solids: Basics, Recent Progress, and Opportunities” Publisher: American Chemical Society
Daniel. Khomskii and Sergey. Streltsov · 2021
Later among the works it cites.
“Exchange interactions, Jahn-Teller coupling, and multipole orders in pseudospin one-half 5 d 2 5{d}^{2} Mott insulators”
Giniyat Khaliullin, Derek Churchill, P. Stavropoulos and Hae-Young Kee · 2021
Later among the works it cites.
“Quantum materials with strong spin–orbit coupling: challenges and opportunities for materials chemists”
Alexander. Browne, Aleksandra Krajewska and Alexandra. Gibbs · 2021
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“Ferro-octupolar Order and Low-Energy Excitations in d 2 {\mathrm{d}}^{2} Double Perovskites of Osmium”
Leonid. Pourovskii, Dario Mosca and Cesare Franchini · 2021
Later among the works it cites.
“Spin–Orbit-Entangled Electronic Phases in 4d and 5d Transition-Metal Compounds”
Tomohiro Takayama et al · 2021
Later among the works it cites.
“Interplay between multipolar spin interactions, Jahn-Teller effect, and electronic correlation in a J eff = 3 2 J_{\text{eff}}=\frac{3}{2} insulator”
Dario Fiore et al · 2021
Later among the works it cites.
“Polarons in materials”
Cesare Franchini, Michele Reticcioli, Martin Setvin and Ulrike Diebold · 2021
Later among the works it cites.
“Visualization of dynamic polaronic strain fields in hybrid lead halide perovskites”
Burak Guzelturk et al · 2021
Later among the works it cites.
“Small polaron transport in cathode materials of rechargeable ion batteries”
Huu Luong, Thien Tran, Viet Phung and Van Dinh · 2021
Later among the works it cites.
“Interplay between multipolar spin interactions, Jahn-Teller effect, and electronic correlation in a J eff = 3 2 J_{\text{eff}}=\frac{3}{2} insulator”
Dario Fiore et al · 2021
Later among the works it cites.
“Orbital Effects in Solids: Basics, Recent Progress, and Opportunities” Publisher: American Chemical Society
Daniel. Khomskii and Sergey. Streltsov · 2021
Later among the works it cites.
“Exchange interactions, Jahn-Teller coupling, and multipole orders in pseudospin one-half 5 d 2 5{d}^{2} Mott insulators”
Giniyat Khaliullin, Derek Churchill, P. Stavropoulos and Hae-Young Kee · 2021
Later among the works it cites.
“Quantum materials with strong spin–orbit coupling: challenges and opportunities for materials chemists”
Alexander. Browne, Aleksandra Krajewska and Alexandra. Gibbs · 2021
Later among the works it cites.
“Ferro-octupolar Order and Low-Energy Excitations in d 2 {\mathrm{d}}^{2} Double Perovskites of Osmium”
Leonid. Pourovskii, Dario Mosca and Cesare Franchini · 2021
Later among the works it cites.
“Spin–Orbit-Entangled Electronic Phases in 4d and 5d Transition-Metal Compounds”
Tomohiro Takayama et al · 2021
Later among the works it cites.
“Interplay between multipolar spin interactions, Jahn-Teller effect, and electronic correlation in a J eff = 3 2 J_{\text{eff}}=\frac{3}{2} insulator”
Dario Fiore et al · 2021
Later among the works it cites.
“Electronic defects in metal oxide photocatalysts”
Ernest Pastor et al · 2022
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“Competing electronic states emerging on polar surfaces”
Michele Reticcioli et al · 2022
Later among the works it cites.
“Multipole polaron in the devil’s staircase of CeSb”
Y. Arai et al · 2022
Later among the works it cites.
“Effects of charge doping on Mott insulator with strong spin-orbit coupling, Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} ”, 2022
E. Garcia et al · 2022
Later among the works it cites.
“Interplay of the Jahn-Teller effect and spin-orbit coupling: The case of trigonal vibrations”
Sergey. Streltsov, Fedor. Temnikov, Kliment. Kugel and Daniel. Khomskii · 2022
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“Probing octupolar hidden order via impurity-induced strain”, 2022
Sreekar Voleti et al · 2022
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“Interplay of the Jahn-Teller effect and spin-orbit coupling: The case of trigonal vibrations”
Sergey. Streltsov, Fedor. Temnikov, Kliment. Kugel and Daniel. Khomskii · 2022
Later among the works it cites.
“Effects of charge doping on Mott insulator with strong spin-orbit coupling, Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} ”, 2022
E. Garcia et al · 2022
Later among the works it cites.
“Electronic defects in metal oxide photocatalysts”
Ernest Pastor et al · 2022
Later among the works it cites.
“Competing electronic states emerging on polar surfaces”
Michele Reticcioli et al · 2022
Later among the works it cites.
“Multipole polaron in the devil’s staircase of CeSb”
Y. Arai et al · 2022
Later among the works it cites.
“Effects of charge doping on Mott insulator with strong spin-orbit coupling, Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} ”, 2022
E. Garcia et al · 2022
Later among the works it cites.
“Interplay of the Jahn-Teller effect and spin-orbit coupling: The case of trigonal vibrations”
Sergey. Streltsov, Fedor. Temnikov, Kliment. Kugel and Daniel. Khomskii · 2022
Later among the works it cites.
“Probing octupolar hidden order via impurity-induced strain”, 2022
Sreekar Voleti et al · 2022
Later among the works it cites.
“Interplay of the Jahn-Teller effect and spin-orbit coupling: The case of trigonal vibrations”
Sergey. Streltsov, Fedor. Temnikov, Kliment. Kugel and Daniel. Khomskii · 2022
Later among the works it cites.
“Effects of charge doping on Mott insulator with strong spin-orbit coupling, Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} ”, 2022
E. Garcia et al · 2022
Later among the works it cites.
“Polarons in two-dimensional atomic crystals”
Weng Sio and Feliciano Giustino · 2023
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“The Mott transition in the 5d 1 compound Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} : a DFT+DMFT study with PAW non-collinear projectors”, 2023
Dario Mosca et al · 2023
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“The Mott transition in the 5d 1 compound Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} : a DFT+DMFT study with PAW non-collinear projectors”, 2023
Dario Mosca et al · 2023
Closest in time.
“Polarons in two-dimensional atomic crystals”
Weng Sio and Feliciano Giustino · 2023
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“The Mott transition in the 5d 1 compound Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} : a DFT+DMFT study with PAW non-collinear projectors”, 2023
Dario Mosca et al · 2023
Closest in time.
“The Mott transition in the 5d 1 compound Ba 2 NaOsO 6 \mathrm{Ba_{2}NaOsO_{6}} : a DFT+DMFT study with PAW non-collinear projectors”, 2023
Dario Mosca et al · 2023
Closest in time.