2016The Journal of Physical Chemistry LettersRequires access

Amplifying Excitation-Power Sensitivity of Photon Upconversion in a NaYbF 4 :Ho Nanostructure for Direct Visualization of Electromagnetic Hotspots

Bing Chen, Yong Liu, Yao Xiao, Xian Chen, Yang Li, Mingyu Li, Xvsheng Qiao, Xianping Fan, Feng Wang

Open publisher page 115 citations

Abstract

Controlling excitation power is the most convenient approach to dynamically tuning upconversion that is essential for a variety of studies. However, this approach suffers from a significant constraint due to insensitive response of most upconversion systems to excitation power. Here we present a study of amplifying excitation power-sensitivity of upconversion in Ho 3+ ions through the use of a NaYbF 4 host. Mechanistic investigation reveals that the sensitive response of Ho 3+ upconversion to excitation power stems from maximal use of the incident energy enabled by concentrated Yb 3+ sensitizers. This allows us to sensitively tune the red-to-green emission intensity ratio from 0.37 to 5.19 by increasing the excitation power from 1.25 to 46.25 W cm –2, which represents a 5.6-fold amplification of the tunability (from 0.19 to 0.49) offered by Yb/Ho (19/1 mol %) codoped NaYF 4 . Our results highlight that the excitation-power sensitive upconversion emission can be exploited to experimentally visualize electromagnetic hotspots.

About this research paper

What this paper is about

Controlling excitation power is the most convenient approach to dynamically tuning upconversion that is essential for a variety of studies. However, this approach suffers from a significant constraint due to insensitive response of most upconversion systems to excitation power. Here we present a study of amplifying excitation power-sensitivity of upconversion in Ho 3+ ions through the use of a NaYbF 4 host. Mechanistic investigation reveals that the sensitive response of Ho 3+ upconversion to excitation power stems from maximal use of the incident energy enabled by concentrated Yb 3+ sensitizers. This allows us to sensitively tune the red-to-green emission intensity ratio from 0.37 to 5.19 by increasing the excitation power from 1.25 to 46.25 W cm –2, which represents a 5.6-fold amplification of the tunability (from 0.19 to 0.49) offered by Yb/Ho (19/1 mol %) codoped NaYF 4 . Our results highlight that the excitation-power sensitive upconversion emission can be exploited to experimentally visualize electromagnetic hotspots.

Why it matters

OpenAlex reports 115 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Controlling excitation power is the most convenient approach to dynamically tuning upconversion that is essential for a variety of studies. However, this approach suffers from a significant constraint due to insensitive response of most upconversion systems to excitation power. Here we present a study of amplifying excitation power-sensitivity of upconversion in Ho 3+ ions through the use of a NaYbF 4 host. Mechanistic investigation reveals that the sensitive response of Ho 3+ upconversion to excitation power stems from maximal use of the incident energy enabled by concentrated Yb 3+ sensitizers. This allows us to sensitively tune the red-to-green emission intensity ratio from 0.37 to 5.19 by increasing the excitation power from 1.25 to 46.25 W cm –2, which represents a 5.6-fold amplification of the tunability (from 0.19 to 0.49) offered by Yb/Ho (19/1 mol %) codoped NaYF 4 . Our results highlight that the excitation-power sensitive upconversion emission can be exploited to experimentally visualize electromagnetic hotspots.

Key concepts: Photon upconversion, Excitation, Materials science, Photon, Ion, Optoelectronics, Power (physics), Optics

Related papers

Back to paper searchBrowse research topicsOriginal source
Amplifying Excitation-Power Sensitivity of Photon Upconversion in a NaYbF 4 :Ho Nanostructure for Direct Visualization of Electromagnetic Hotspots — Research Paper | ScholarLens