Charge disproportionate antiferromagnetism at the verge of the insulator-metal transition in doped LaFeO3

We explore the effects of electron doping in lanthanum ferrite, LaFeO3 by doping Mo at the Fe sites. Based on magnetic, transport, scanning tunneling spectroscopy, and x-ray photoelectron spectroscopy measurements, we find that the large gap, charge-transfer, antiferromagnetic (AFM) insulator LaFeO...

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Veröffentlicht in:Physical review. B 2019-02, Vol.99 (7), p.075106
Hauptverfasser: Jana, S, Panda, S K, Phuyal, D, Pal, B, Mukherjee, S, Dutta, A, Kumar, P Anil, Hedlund, D, Schött, J, Thunström, P, Kvashnin, Y, Rensmo, H, Kamalakar, M Venkata, Segre, Carlo U, Svedlindh, P, Gunnarsson, K, Biermann, S, Eriksson, O, Karis, O, Sarma, D Sarma
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Sprache:eng
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Zusammenfassung:We explore the effects of electron doping in lanthanum ferrite, LaFeO3 by doping Mo at the Fe sites. Based on magnetic, transport, scanning tunneling spectroscopy, and x-ray photoelectron spectroscopy measurements, we find that the large gap, charge-transfer, antiferromagnetic (AFM) insulator LaFeO 3 becomes a small gap AFM band insulator at low Mo doping. With increasing doping concentration, Mo states, which appear around the Fermi level, is broadened and become gapless at a critical doping of 20%. Using a combination of calculations based on density functional theory plus Hubbard U (DFT+U) and x-ray absorption spectroscopy measurements, we find that the system shows charge disproportionation (CD) in Fe ions at 25% Mo doping, where two distinct Fe sites, having Fe2+ and Fe3+ nominal charge states appear. A local breathing-type lattice distortion induces the charge disproportionation at the Fe site without destroying the antiferromagnetic order. Our combined experimental and theoretical investigations establish that the Fe states form a CD antiferromagnet at 25% Mo doping, which remains insulating, while the appearance of Mo states around the Fermi level is showing an indication towards the insulator-metal transition.
ISSN:2469-9950
2469-9969
2469-9969
DOI:10.1103/PhysRevB.99.075106