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  4. Achieving Ultra-Broadband Sunlight-Like Emission in Single-Phase Phosphors: The Interplay of Structure and Luminescence
 
research article

Achieving Ultra-Broadband Sunlight-Like Emission in Single-Phase Phosphors: The Interplay of Structure and Luminescence

Liu, Shuifu
•
Li, Liyi
•
Qin, Xinghui
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September 19, 2024
Advanced Materials

The quest for artificial light sources mimicking sunlight has been a long-standing endeavor, particularly for applications in anticounterfeiting, agriculture, and color hue detection. Conventional sunlight simulators are often cost-prohibitive and bulky. Therefore, the development of a series of single-phase phosphors Ca9LiMg1-xAl2x/3(PO4)7:0.1Eu2+ (x = 0-0.75) with sunlight-like emission represents a welcome step towards compact and economical light source alternatives. The phosphors are obtained by an original heterovalent substitution method and emit a broad spectrum spanning from violet to deep red. Notably, the phosphor with x = 0.5 exhibits an impressive full width at half-maximum of 330 nm. A synergistic interplay of experimental investigations and theory unveils the mechanism behind sunlight-like emission due to the local structural perturbations introduced by the heterovalent substitution of Al3+ for Mg2+, leading to a varied distribution of Eu2+ within the lattice. Subsequent characterization of a series of organic dyes combining absorption spectroscopy with convolutional neural network analysis convincingly demonstrates the potential of this phosphor in portable photodetection devices. Broad-spectrum light source testing empowers the model to precisely differentiate dye patterns. This points to the phosphor being ideal for mimicking sunlight. Beyond this demonstrated application, the phosphor's utility is envisioned in other relevant domains, including visible light communication and smart agriculture.

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Type
research article
DOI
10.1002/adma.202406164
Scopus ID

2-s2.0-85198322963

PubMed ID

38924614

Author(s)
Liu, Shuifu

Sun Yat-Sen University

Li, Liyi

Sun Yat-Sen University

Qin, Xinghui

Sun Yat-Sen University

Du, Rongkai

Sun Yat-Sen University

Sun, Yifan

Sun Yat-Sen University

Xie, Shixing

Sun Yat-Sen University

Wang, Jiaqi

Sun Yat-Sen University

Molokeev, Maxim S.

Kirensky Institute of Physics, Siberian Branch, Russian Academy of Sciences

Xi, Shibo

Institute of Sustainability for Chemicals, Energy and Environment

Bünzli, Jean Claude G.  

École Polytechnique Fédérale de Lausanne

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Date Issued

2024-09-19

Publisher

Wiley

Published in
Advanced Materials
Volume

36

Issue

38

Article Number

2406164

Subjects

artificial light source

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Ca LiMg Al (PO ) :0.1Eu 9 1-x 2x/3 4 7 2+

•

convolutional neural network analysis

•

mimicking sunlight

•

portable photodetection devices

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
PH-SB  
FunderFunding(s)Grant NumberGrant URL

Ecole Polytechnique Federale de Lausanne

NSFC

52272174,U1301242,U1801253,U22A20135

Southern Marine Science and Engineering Guangdong Laboratory

SML2021SP204,SML2023SP215/218/238

Available on Infoscience
January 24, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/243296
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