Ultrasensitive Colorimetric Luminescence Thermometry by Progressive Phase Transition.
Hao SuoDongxu GuoPeihang ZhaoXin ZhangYu WangWeilin ZhengPanlai LiTao YinLi GuanZhijun WangFeng WangPublished in: Advanced science (Weinheim, Baden-Wurttemberg, Germany) (2023)
Luminescent materials that display quick spectral responses to thermal stimuli have attracted pervasive attention in sensing technologies. Herein, a programmable luminescence color switching in lanthanide-doped LiYO 2 under thermal stimuli, based on deliberate control of the monoclinic (β) to tetragonal (α) phase transition in the crystal lattice, is reported. Specifically, a lanthanide-doping (Ln 3+ ) approach to fine-tune the phase-transition temperature in a wide range from 294 to 359 K is developed. Accordingly, an array of Ln 3+ -doped LiYO 2 crystals that exhibit progressive phase transition, and thus sequential color switching at gradually increasing temperatures, is constructed. The tunable optical response to thermal stimuli is harnessed for colorimetric temperature indication and quantitative detection, demonstrating superior sensitivity and temperature resolution (S r = 26.1% K -1 , δT = 0.008 K). The advances in controlling the phase-transition behavior of luminescent materials also offer exciting opportunities for high-performance personalized health monitoring.
Keyphrases
- quantum dots
- energy transfer
- sensitive detection
- gold nanoparticles
- metal organic framework
- loop mediated isothermal amplification
- high resolution
- multiple sclerosis
- single molecule
- public health
- healthcare
- mental health
- label free
- air pollution
- high speed
- wastewater treatment
- optical coherence tomography
- health information
- high throughput
- magnetic resonance
- magnetic resonance imaging
- dual energy
- mass spectrometry
- contrast enhanced
- transition metal