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Dimensionality control of d-orbital occupation in oxide superlattices.


ABSTRACT: Manipulating the orbital state in a strongly correlated electron system is of fundamental and technological importance for exploring and developing novel electronic phases. Here, we report an unambiguous demonstration of orbital occupancy control between t2g and eg multiplets in quasi-two-dimensional transition metal oxide superlattices (SLs) composed of a Mott insulator LaCoO3 and a band insulator LaAlO3. As the LaCoO3 sublayer thickness approaches its fundamental limit (i.e. one unit-cell-thick), the electronic state of the SLs changed from a Mott insulator, in which both t2g and eg orbitals are partially filled, to a band insulator by completely filling (emptying) the t2g (eg) orbitals. We found the reduction of dimensionality has a profound effect on the electronic structure evolution, which is, whereas, insensitive to the epitaxial strain. The remarkable orbital controllability shown here offers a promising pathway for novel applications such as catalysis and photovoltaics, where the energy of d level is an essential parameter.

SUBMITTER: Jeong DW 

PROVIDER: S-EPMC4137265 | biostudies-literature | 2014 Aug

REPOSITORIES: biostudies-literature

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Dimensionality control of d-orbital occupation in oxide superlattices.

Jeong Da Woon DW   Choi Woo Seok WS   Okamoto Satoshi S   Kim Jae-Young JY   Kim Kyung Wan KW   Moon Soon Jae SJ   Cho Deok-Yong DY   Lee Ho Nyung HN   Noh Tae Won TW  

Scientific reports 20140819


Manipulating the orbital state in a strongly correlated electron system is of fundamental and technological importance for exploring and developing novel electronic phases. Here, we report an unambiguous demonstration of orbital occupancy control between t2g and eg multiplets in quasi-two-dimensional transition metal oxide superlattices (SLs) composed of a Mott insulator LaCoO3 and a band insulator LaAlO3. As the LaCoO3 sublayer thickness approaches its fundamental limit (i.e. one unit-cell-thic  ...[more]

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