Remarkable Plasmonic Enhanced Luminescence of Ce3+doped Lanthanide Downconversion Nanoparticles in NIR‐II Window by Silver Hole‐Cap Nanoarrays

Author:

Xu Jiamin1,Fu Ming2,Lu Yao1,Centeno Anthony3,Xu Jingdong4,Xiao Xiaofei2,Zhang Qiyu1,Evers Koen1,Xu Yunfan2,Lim Rico2,Liu Changxu5,Maier Stefan A6,Oulton Rupert5,Ryan Mary P5,Xie Fang7ORCID

Affiliation:

1. Department of Materials Imperial College London Exhibition Road London SW7 2AZ United Kingdom

2. Department of Physics Imperial College London Exhibition Road London Sw7 2AZ United Kingdom

3. James Watt School Of Engineering University of Glasgow James Watt South Building Glasgow Scotland G12 8QQ United Kingdom

4. Imperial College London Exhibition Road London SW7 2AZ United Kingdom

5. University of Exeter Stocker Rd Exeter EX4 4PY United Kingdom

6. Monash University Wellington Road Clayton, Melbourne Victoria 3800 Australia

7. Department of Materials Imperial College London Prince Consort Road London SW7 2AZ United Kingdom

Abstract

AbstractLanthanide downconversion nanoparticles (DCNPs) have huge potential in biosensing and imaging applications in the NIR‐II window. However, DCNPs inherently suffer from low quantum efficiency, due to low absorption cross‐section and the restricted doping concentration of lanthanide ions. In this work, a combined strategy for downconversion luminescence in the NIR‐II window is investigated by the integration of Ce3+ ions into the conventional NaYF4: Yb3+, Er3+ DCNPs and incorporation of periodic silver hole‐cap coupled Nanoarrays (Ag‐HCNAs) simultaneously. Over two orders of magnitude, luminescence enhancement is achieved by the combination of optimized Ce3+ doping and plasmonic effects, compared to NaYF4: Yb3+, Er3+ DCNPs immobilized on the glass substrate. Moreover, 3D Finite‐Difference Time‐Domain (FDTD) simulations and time‐resolved luminescence measurements are combined to gain important insights into the mechanism of downconversion luminescence enhancement. The results show that there is a large electric field enhancement between the Ag nanoholes and the Ag hemisphere cap at 980 nm (excitation enhancement), while the lifetime shortening at 1525 nm revealed an increased radiative decay rate and enhanced quantum yield (emission rate enhancement). The strategy for downconversion luminescence enhancement demonstrated in this work holds a significant potential for advancing the next generation biosensing and bioimaging based on DCNPs in the NIR‐II window.

Funder

Henry Royce Institute

Publisher

Wiley

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