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Mono- to few-layer non-van der Waals 2D lanthanide-doped NaYF4 nanosheets with upconversion luminescence

journal contribution
posted on 2024-11-02, 15:50 authored by Christian Clarke, Mandeep Singh, Sherif Abbas, Xiaoxue Xu, Michelle SpencerMichelle Spencer, Rajesh RamanathanRajesh Ramanathan, Philipp ReineckPhilipp Reineck, Vipul BansalVipul Bansal, Cuong Ton-ThatCuong Ton-That
NaYF(4)is an efficient host material for lanthanide-based upconversion luminescence and has attracted immense interest for potential applications in photovoltaics, lasers and bioimaging. However, being a non-van der Waals (non-vdW) material, there have been thus far no reports on exfoliation of bulk NaYF(4)to nanosheets and their upconversion luminescence properties. Here, we demonstrate for the first time the fabrication of lanthanide-containing NaYF(4)2D nanosheets using a soft liquid-phase exfoliation method and report on their optical, electronic and chemical characteristics. The nanosheets exfoliated from NaYF4:Yb,Er microcrystals consisting mainly of beta-NaYF(4)become enriched in alpha-NaYF(4)post exfoliation and have a large micron-sized planar area with a preferential (100) surface orientation. X-ray absorption spectroscopy confirms that both Yb and Er doping ions are retained in the exfoliated nanosheets. Through centrifugation, NaYF(4)2D nanosheets are successfully obtained with thicknesses ranging from a monolayer to tens of layers. Optical analysis of individual nanosheets shows that they exhibit both optical down-conversion and upconversion properties, albeit with reduced emission intensities compared with the parent microparticles. Further exploration of their electronic structure by density functional theory (DFT) calculations and photoelectron spectroscopy reveals the formation of surface F atom defects and a shrinkage of the electronic bandgap in ultrathin nanosheets. Our findings will trigger further interest in non-vdW 2D upconversion nanomaterials.

History

Journal

2D Materials

Volume

8

Number

15005

Issue

1

Start page

1

End page

9

Total pages

9

Publisher

Institute of Physics

Place published

United Kingdom

Language

English

Copyright

© 2020 IOP Publishing Ltd

Former Identifier

2006104070

Esploro creation date

2021-11-25

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