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Title: Unravelling the energy transfer of Er³⁺-self-sensitized upconversion in Er³⁺–Yb³⁺–Er3³⁺ clustered core@shell nanoparticles
Authors: Huang, B 
Sun, M 
Dougherty, AW 
Dong, H
Xu, YJ
Sun, LD
Yan, CH
Issue Date: 14-Dec-2017
Source: Nanoscale, 14 Dec. 2017, v. 9, no. 46, p. 18490-18497
Abstract: Unravelling upconversion (UC) energy transfer mechanisms is significant for designing novel efficient anti-Stokes phosphors. We have studied the correlation of different lanthanide dopants within Er³⁺-self-sensitized core@shell upconversion nanoparticles (UCNPs). Here, our focus will be on high-concentration dopants that are able to sufficiently produce the clustering effect, especially within the interplay between Er³⁺ and Yb³⁺. We demonstrate that whatever the amount of the self-sensitizer (e.g., Er³⁺), abnormal absorption enhancement will occur as long as Yb³⁺ clusters are present. This effect originates from the substantial energy transfer between Yb³⁺-Yb³⁺ clusters despite the increased energy transfer from Yb³⁺ to Er³⁺. Therefore, the energy transfer efficiency is still constrained. However, we conversely used one of the aforementioned quench-paths of UC energy transfer to easily transfer the energy from the in-shell shell layer to the in-core area with the assistance of the energy potential reservoir, which was given by the homogeneous core@shell band offset at the interface region. Indirectly, we actualize the Er³⁺ UC luminescence with self-sensitization through an extended energy transfer path. This work provides a solid support and analytic theory for unraveling the energy transfer mechanism from recent works on Er³⁺ self-sensitized UC luminescence.
Publisher: Royal Society of Chemistry
Journal: Nanoscale 
ISSN: 2040-3364
EISSN: 2040-3372
DOI: 10.1039/c7nr06729a
Rights: This journal is © The Royal Society of Chemistry 2017
The following publication Huang, B., Sun, M., Dougherty, A. W., Dong, H., Xu, Y. J., Sun, L. D., & Yan, C. H. (2017). Unravelling the energy transfer of Er 3+-self-sensitized upconversion in Er 3+–Yb 3+–Er 3+ clustered core@ shell nanoparticles. Nanoscale, 9(46), 18490-18497 is available at https://doi.org/10.1039/C7NR06729A.
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