Citation:
Mariscal-Jiménez, A., Tarazaga Martín-Luengo, A., Galiana, B., Ballesteros, C., Bonanni, A., Martín-Sánchez, J., & Serna, R. (2020). Photoluminescence and Stoichiometry Correlation in Nanocrystalline EuOx Thin Films: Tunable Color Emission. In The Journal of Physical Chemistry C (Vol. 124, Issue 28, pp. 15434–15439). American Chemical Society (ACS).
xmlui.dri2xhtml.METS-1.0.item-contributor-funder:
European Commission Ministerio de Ciencia e Innovación (España)
Sponsor:
This work has been financially supported by the Spanish Ministerio de Ciencia e Innovación through grant RTI2018-096498-B-I00 (MCIU/AEI/FEDER, UE). Support by the EC’s Horizon 2020 Research and Innovation Programme (grant 645776), by the Austrian Science Fund (FWF) (P24471 and P26830), and by the NATO Science for Peace Programme (grant 984735) is acknowledged. A.M-J. acknowledges the financial support through BES-2013-062593. J.M-S acknowledges financial support through the Ramón y Cajal Program from the Government of Spain and FSE (RYC2018-026196-I). We acknowledge support of the publication fee by the Austrian Science Fund (FWF) Der Wissenschaftsfonds Open Access Publication Support Initiative.
Project:
Gobierno de España. RTI2018- 096498-B-I00 info:eu-repo/grantAgreement/EC/645776 Gobierno de España. RYC2018- 026196-I
Keywords:
Color
,
Ions
,
Thin Films
,
Transmission Electron Microscopy
,
Nanocrystals
The development of broadband and ultracompact optoelectronic devices relies on the possibility of fabricating bright and tunable emitters at the nanoscale. Here, we show emission from EuOx (1 ≤ x < 1.4) thin films on silicon formed by nanocrystals with averageThe development of broadband and ultracompact optoelectronic devices relies on the possibility of fabricating bright and tunable emitters at the nanoscale. Here, we show emission from EuOx (1 ≤ x < 1.4) thin films on silicon formed by nanocrystals with average sizes in the range of 5 nm. The photoluminescence emission of the nano-EuOx films is tunable as a function of the oxygen concentration changing from a green broadband Eu2+-related emission to a narrow red Eu3+-related emission. To reach these results has been instrumental through the use of a new methodology specially designed to achieve high-quality europium oxide films whose compositional properties are controlled by the growth base pressure and preserved thanks to a chemically stable and transparent cover layer of Al2O3. Our findings confirm the outstanding potential of nanostructured EuOx films as “one-compound” optical elements with tunable emission properties for their implementation in integrated silicon-based devices.[+][-]