Abstract

Near-infrared (NIR) photostimulated luminescence (PSL) nanocrystals (NCs) have recently evoked considerable interest in the field of biomedicine, but are currently limited by the controlled synthesis of efficient PSL NCs. Herein, we report for the first time the controlled synthesis of CaS:Eu2+,Sm3+ NIR PSL NCs through a high-temperature co-precipitation method. The role of Sm3+ co-doping and the effect of thermal annealing on the optical properties of the NCs as well as the charging and discharging processes, the trap depth distribution, and the underlying PSL mechanism are comprehensively surveyed by means of photoluminescence, persistent luminescence, thermoluminescence, and PSL spectroscopies. The as-prepared NCs exhibit intense PSL of Eu2+ at 650 nm with a fast response to stimulation in a broad NIR region from 800 nm to 1600 nm, a duration time longer than 2 h, and an extremely low power density threshold down to 10 mW cm-2 at 980 nm. Furthermore, by taking advantage of the intense NIR PSL, we demonstrate the application of CaS:Eu2+,Sm3+ NCs as sensitive luminescent nanoprobes for biotin receptor-targeted cancer cell imaging. These results reveal the great promise of CaS:Eu2+,Sm3+ nanoprobes for autofluorescence-free bioimaging, and also lay the foundation for future design of efficient NIR PSL nanoprobes towards versatile bioapplications.

Highlights

  • The physical origin of Photostimulated luminescence (PSL) is similar to that of persistent luminescence (PersL) except that the traps of PSL materials are deeper than those of their PersL analogs, which cannot be thermally activated at room temperature.[6,7,8,9]

  • A systematic investigation of Rare earth (RE)-doped CaS PSL NCs from the controlled synthesis, fundamental PSL photophysics to bioapplications, which is of vital importance for their optical performance optimization and for future design of efficient PSL nanoprobes, remains unexplored so far

  • By conjugating with a layer of biotinylated phospholipids, we demonstrate the application of CaS:Eu2+,Sm3+ NCs as sensitive NIR PSL nanoprobes for biotin receptor-targeted cancer cell imaging, revealing the great potential of these NIR PSL nanoprobes for auto uorescence-free bioimaging

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Summary

Introduction

A systematic investigation of RE-doped CaS PSL NCs from the controlled synthesis, fundamental PSL photophysics to bioapplications, which is of vital importance for their optical performance optimization and for future design of efficient PSL nanoprobes, remains unexplored so far. By conjugating with a layer of biotinylated phospholipids, we demonstrate the application of CaS:Eu2+,Sm3+ NCs as sensitive NIR PSL nanoprobes for biotin receptor-targeted cancer cell imaging, revealing the great potential of these NIR PSL nanoprobes for auto uorescence-free bioimaging

Chemicals and materials
Characterization
Structure and morphology
Targeted cancer cell imaging
Conclusions

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