Ultrasensitive NIR-II Ratiometric Nanothermometers for 3D In Vivo Thermal Imaging.

Li, Dan; Jia, Mochen; Jia, Tao; Chen, Guanying · Adv Mater · 2024

basic_science · Level V

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Abstract

Luminescent nanothermometry, particularly the one based on ratiometric, has sparked intense research for non-invasive in vivo or intracellular temperature mapping, empowering their uses as diagnosis tools in biomedicine. However, ratiometric detection still suffers from biased sensing induced by wavelength-dependent tissue absorption and scattering, low thermal sensitivity (S<sub>r</sub> ), and lack of imaging depth information. Herein, this work constructs an ultrasensitive NIR-II ratiometric nanothermometer with self-calibrating ability for 3D in vivo thermographic imaging, in which temperature-insensitive lanthanide nanocrystals and strongly temperature-quenched Ag<sub>2</sub> S quantum dots are co-assembled to form a hybrid nanocomposite material. Precise control over the amount ratio between two sub-materials enables the manipulation of heat-activated back energy transfer from Ag<sub>2</sub> S to Yb<sup>3+</sup> in lanthanide nanoparticles, thereby rendering S<sub>r</sub> up to 7.8% °C<sup>-1</sup> at 43.5 °C, and higher than 6.5% °C<sup>-1</sup> over the entire physiological temperature range. Moreover, the luminescence intensity ratio between two separated spectral regions within the narrow Yb<sup>3+</sup> emission peak is used to determine the depth information of nanothermometers in living mice and correct the effect of tissue depth on 2D thermographic imaging, and therefore allows a proof-of-concept demonstration of accurate 3D in vivo thermographic imaging, constituting a solid step toward the development of advanced ratiometric nanothermometry for biological applications.

Medical subject headings