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Electronic Structure of a Graphene-like Artificial Crystal of NdNiO 3 .

Authors :
Arab A
Liu X
Köksal O
Yang W
Chandrasena RU
Middey S
Kareev M
Kumar S
Husanu MA
Yang Z
Gu L
Strocov VN
Lee TL
Minár J
Pentcheva R
Chakhalian J
Gray AX
Source :
Nano letters [Nano Lett] 2019 Nov 13; Vol. 19 (11), pp. 8311-8317. Date of Electronic Publication: 2019 Nov 04.
Publication Year :
2019

Abstract

Artificial complex-oxide heterostructures containing ultrathin buried layers grown along the pseudocubic [111] direction have been predicted to host a plethora of exotic quantum states arising from the graphene-like lattice geometry and the interplay between strong electronic correlations and band topology. To date, however, electronic-structural investigations of such atomic layers remain an immense challenge due to the shortcomings of conventional surface-sensitive probes with typical information depths of a few angstroms. Here, we use a combination of bulk-sensitive soft X-ray angle-resolved photoelectron spectroscopy (SX-ARPES), hard X-ray photoelectron spectroscopy (HAXPES), and state-of-the-art first-principles calculations to demonstrate a direct and robust method for extracting momentum-resolved and angle-integrated valence-band electronic structure of an ultrathin buckled graphene-like layer of NdNiO <subscript>3</subscript> confined between two 4-unit cell-thick layers of insulating LaAlO <subscript>3</subscript> . The momentum-resolved dispersion of the buried Ni d states near the Fermi level obtained via SX-ARPES is in excellent agreement with the first-principles calculations and establishes the realization of an antiferro-orbital order in this artificial lattice. The HAXPES measurements reveal the presence of a valence-band bandgap of 265 meV. Our findings open a promising avenue for designing and investigating quantum states of matter with exotic order and topology in a few buried layers.

Details

Language :
English
ISSN :
1530-6992
Volume :
19
Issue :
11
Database :
MEDLINE
Journal :
Nano letters
Publication Type :
Academic Journal
Accession number :
31644875
Full Text :
https://doi.org/10.1021/acs.nanolett.9b03962