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Updated: Jan 10, 2026

A Bright NIR-II Fluorescence Probe for Vascular and Tumor Imaging
Published on: March 17, 2023
Tailoring Crystal Structure and Energy Modulation Pathways for Boosted NIR-II Luminescence Imaging beyond 1600 nm
Shenghui Bi1,2,3, Yao Xu1,2, Zhixin Chen1,2
1School of Physics and Electronics, Key Laboratory of Low-dimensional Quantum Structures and Quantum Control of the Ministry of Education, Synergetic Innovation Center for Quantum Effects and Applications, Key Laboratory for Matter Microstructure and Function of Hunan Province, Institute of Interdisciplinary Studies, Hunan Normal University, Changsha, Hunan 410081, China.
None:
Second near-infrared (NIR-II, 1000-1700 nm) optical imaging offers remarkable potential for noninvasive in vivo pathological diagnosis due to its low photon scattering and deep tissue penetration. However, current Nd-, Ho-, and Er-based nanoprobes emit within 1000-1550 nm, limiting efficient emission beyond 1600 nm. Herein, a general Mn doping strategy is proposed to boost NIR-II luminescence beyond 1600 nm in NaLnF4:Yb/Tm nanocrystals by inducing crystal structure transformation (hexagonal [β] → cubic [α]), tuning phonon energy, and establishing efficient Tm-Mn energy transfer. Due to efficient energy transfer and multiphonon relaxation, α-NaLnF4:Yb/Tm/Mn exhibited ∼100-fold-enhanced 1632 nm emission versus β-NaLnF4. Further, inert coating yielded an additional 4-fold enhancement. Utilizing α-NaLuF4:Yb/Tm/Mn@NaLuF4 core-shell structures, high-resolution NIR-IIb (>1600 nm) in vivo imaging of intestine, vasculature, and bone fractures was achieved. This work provides a new strategy for designing efficient NIR-IIb nanoprobes for biomedical imaging.
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