First-principles study of electron and hole doping effects in perovskite nickelates

被引:18
作者
Iglesias, Lucia [1 ]
Bibes, Manuel [1 ]
Varignon, Julien [2 ]
机构
[1] Univ Paris Sud, Univ Paris Saclay, Unite Mixte Phys, CNRS,Thales, F-91767 Palaiseau, France
[2] Normandie Univ, Lab CRISMAT, CNRS, UMR 6508,ENSICAEN, 6 Blvd Marechal Juin, F-14050 Caen 4, France
关键词
METAL-INSULATOR-TRANSITION; RNIO3; R; EVOLUTION; OXIDE; EU; GD; SM; DY;
D O I
10.1103/PhysRevB.104.035123
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Rare-earth nickelates R3+Ni3+O3 (R = Lu-Pr, Y) show a striking metal-insulator transition in their bulk phase whose temperature can be tuned by the rare-earth radius. These compounds are also the parent phases of the newly identified infinite layer RNiO2 superconductors. Although intensive theoretical works have been devoted to understand the origin of the metal-insulator transition in the bulk, there have only been a few studies on the role of hole and electron doping by rare-earth substitutions in RNiO3 materials. Using first-principles calculations based on density functional theory (DFT) we study the effect of hole and electron doping in a prototypical nickelate SmNiO3. We perform calculations without Hubbard-like U potential on Ni 3d levels but with a meta- generalized gradient approximation better amending self-interaction errors. We find that at low doping, polarons form with intermediate localized states in the band gap resulting in a semiconducting behavior. At larger doping, the intermediate states spread more and more in the band gap until they merge either with the valence (hole doping) or the conduction (electron doping) band, ultimately resulting in a metallic state at 25% of R cation substitution. These results are reminiscent of experimental data available in the literature and demonstrate that DFT simulations without any empirical parameter are qualified for studying doping effects in correlated oxides and exploring the mechanisms underlying the superconducting phase of rare-earth nickelates.
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页数:10
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共 57 条
  • [11] Electronic transitions in strained SmNiO3 thin films
    Catalano, S.
    Gibert, M.
    Bisogni, V.
    Peil, O. E.
    He, F.
    Sutarto, R.
    Viret, M.
    Zubko, P.
    Scherwitzl, R.
    Georges, A.
    Sawatzky, G. A.
    Schmitt, T.
    Triscone, J. -M.
    [J]. APL MATERIALS, 2014, 2 (11):
  • [12] Orbital order and possible superconductivity in LaNiO3/LaMO3 superlattices
    Chaloupka, Jiri
    Khaliullin, Giniyat
    [J]. PHYSICAL REVIEW LETTERS, 2008, 100 (01)
  • [13] Revealing the role of lattice distortions in the hydrogen-induced metal-insulator transition of SmNiO3
    Chen, Jikun
    Mao, Wei
    Ge, Binghui
    Wang, Jiaou
    Ke, Xinyou
    Wang, Vei
    Wang, Yiping
    Dobeli, Max
    Geng, Wentong
    Matsuzaki, Hiroyuki
    Shi, Jian
    Jiang, Yong
    [J]. NATURE COMMUNICATIONS, 2019, 10 (1)
  • [14] Towards Oxide Electronics: a Roadmap
    Coll, M.
    Fontcuberta, J.
    Althammer, M.
    Bibes, M.
    Boschker, H.
    Calleja, A.
    Cheng, G.
    Cuoco, M.
    Dittmann, R.
    Dkhil, B.
    El Baggari, I
    Fanciulli, M.
    Fina, I
    Fortunato, E.
    Frontera, C.
    Fujita, S.
    Garcia, V
    Goennenwein, S. T. B.
    Granqvist, C-G
    Grollier, J.
    Gross, R.
    Hagfeldt, A.
    Herranz, G.
    Hono, K.
    Houwman, E.
    Huijben, M.
    Kalaboukhov, A.
    Keeble, D. J.
    Koster, G.
    Kourkoutis, L. F.
    Levy, J.
    Lira-Cantu, M.
    MacManus-Driscoll, J. L.
    Mannhart, Jochen
    Martins, R.
    Menzel, S.
    Mikolajick, T.
    Napari, M.
    Nguyen, M. D.
    Niklasson, G.
    Paillard, C.
    Panigrahi, S.
    Rijnders, G.
    Sanchez, F.
    Sanchis, P.
    Sanna, S.
    Schlom, D. G.
    Schroeder, U.
    Shen, K. M.
    Siemon, A.
    [J]. APPLIED SURFACE SCIENCE, 2019, 482 : 1 - 93
  • [15] Bond disproportionation, charge self-regulation, and ligand holes in s-p and in d-electron ABX3 perovskites by density functional theory
    Dalpian, G. M.
    Liu, Q.
    Varignon, J.
    Bibes, M.
    Zunger, Alex
    [J]. PHYSICAL REVIEW B, 2018, 98 (07)
  • [16] Electron-energy-loss spectra and the structural stability of nickel oxide: An LSDA+U study
    Dudarev, SL
    Botton, GA
    Savrasov, SY
    Humphreys, CJ
    Sutton, AP
    [J]. PHYSICAL REVIEW B, 1998, 57 (03) : 1505 - 1509
  • [17] An accurate first-principles treatment of doping-dependent electronic structure of high-temperature cuprate superconductors
    Furness, James W.
    Zhang, Yubo
    Lane, Christopher
    Buda, Ioana Gianina
    Barbiellini, Bernardo
    Markiewicz, Robert S.
    Bansil, Arun
    Sun, Jianwei
    [J]. COMMUNICATIONS PHYSICS, 2018, 1
  • [18] Structure and charge order in the antiferromagnetic band-insulating phase of NdNiO3
    Garcia-Munoz, J. L.
    Aranda, M. A. G.
    Alonso, J. A.
    Martinez-Lope, M. J.
    [J]. PHYSICAL REVIEW B, 2009, 79 (13)
  • [19] INFLUENCE OF CARRIER INJECTION ON THE METAL-INSULATOR-TRANSITION IN ELECTRON-DOPED AND HOLE-DOPED R(1-X)A(X)NIO(3) PEROVSKITES
    GARCIAMUNOZ, JL
    SUAAIDI, M
    MARTINEZLOPE, MJ
    ALONSO, JA
    [J]. PHYSICAL REVIEW B, 1995, 52 (18): : 13563 - 13569
  • [20] Multiferroicity in Rare-Earth Nickelates RNiO3
    Giovannetti, Gianluca
    Kumar, Sanjeev
    Khomskii, Daniel
    Picozzi, Silvia
    van den Brink, Jeroen
    [J]. PHYSICAL REVIEW LETTERS, 2009, 103 (15)