High-pressure tuning of d-d crystal-field electronic transitions and electronic band gap in Co(I O3)2
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Identificadores
URI: https://hdl.handle.net/10902/28534ISSN: 2469-9950
ISSN: 2469-9969
ISSN: 1098-0121
ISSN: 1550-235X
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Liang, A.; Rodríguez González, Fernando
Fecha
2022Derechos
© American Physical Society
Publicado en
Physical Review B, 2022, 105(11), 115204
Editorial
American Physical Society
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Resumen/Abstract
High-pressure optical-absorption measurements performed on polycrystalline
Co
(
I
O
3
)
2
samples were used to characterize the influence of pressure on the electronic
d
–
d
transitions associated with
Co
2
+
and the fundamental band gap of
Co
(
I
O
3
)
2
. The results shed light on the electron-lattice coupling and show that
Co
(
I
O
3
)
2
exhibits an unusual behavior because the compression of Co–O bond distances is not coupled to pressure-induced changes induced in the unit-cell volume. Experimental results on the internal
d
–
d
transitions of
Co
2
+
have been explained based on changes in the constituent
Co
O
6
octahedral units using the semiempirical Tanabe-Sugano diagram. Our findings support that the high-spin ground state
(
4
T
1
)
is very stable in
Co
(
I
O
3
)
2
. We have also determined the band-gap energy of
Co
(
I
O
3
)
2
and its pressure dependence which is highly nonlinear. According to density-functional theory band-structure calculations, this nonlinearity occurs because the bottom of the conduction band is dominated by I-5p orbitals and the top of the valence band by Co-3d and O-2p orbitals, and because the Co–O and I–O bond lengths exhibit different pressure dependences.
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