Red light intensity modulation, temperature sensing and bioimaging of NaLuF4:Er3+/Tm3+/Yb3+ microcrystals under 1532 nm laser excitation
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[1] M. Jia,et al. Ultrasensitive NIR‐II Ratiometric Nanothermometers for 3D In Vivo Thermal Imaging , 2023, Advanced materials.
[2] Shuai Zha,et al. Ultrasensitive and rapid detection of hydrogen sulfide by an upconversion nanosensor NaYF4:Yb3+, Tm3+@NaYF4@Ag2O , 2023, Materials & Design.
[3] L. Tong,et al. Lanthanide‐Doped Nanomaterials for Tumor Diagnosis and Treatment by Second Near‐Infrared Fluorescence Imaging , 2023, Advanced Optical Materials.
[4] Yongkuan Suo,et al. Enhanced NIR-II Fluorescent Lateral Flow Biosensing Platform Based on Supramolecular Host-Guest Self-Assembly for Point-of-Care Testing of Tumor Biomarkers. , 2023, ACS applied materials & interfaces.
[5] Reza Zarei Moghadam,et al. Understanding the effect of Mn2+ on Yb3+/Er3+ co-doped NaYF4 upconversion and obtaining the optimal combination of these tridoping , 2023, Scientific reports.
[6] P. Kulpiński,et al. Multimodal Optically Nonlinear Nanoparticles Exhibiting Simultaneous Higher Harmonics Generation and Upconversion Luminescence for Anticounterfeiting and 8‐bit Optical Coding , 2023, Advanced Functional Materials.
[7] Jialin Wang,et al. The Mn/Yb/Er triple-doped CeO2 nanozyme with enhanced oxidase-like activity for highly sensitive ratiometric detection of nitrite , 2023, Chinese Chemical Letters.
[8] Guanying Chen,et al. Near-infrared upconversion photosensitizer enabling photodynamic production and in situ dynamic monitoring of hydroxyl radical in live mice , 2023, Nano Today.
[9] Haomiao Zhu,et al. In Vivo NIR-II Fluorescence Lifetime Imaging of Whole-Body Vascular Using High Quantum Yield Lanthanide-Doped Nanoparticles. , 2023, Small.
[10] Fei He,et al. Research progress on rare earth up-conversion and near-infrared II luminescence in biological applications , 2023, Chinese Chemical Letters.
[11] Yanchao Wang,et al. Excitation Wavelength‐Dependent Upconversion Luminescence Enhancement in Tm3+‐Doped LiErF4@LiYF4 System Under High Pressure , 2023, Advanced Optical Materials.
[12] Y. Liang,et al. NIR-activated upconversion nanoparticles/hydrogen-bonded organic framework nanocomposites for NIR-II imaging-guided cancer therapy , 2023, Nano Today.
[13] Ke-Zhi Wang,et al. Boosting Photo Upconversion in Electropolymerised Thin Film with Yb/Er Complexes , 2023, Advanced Optical Materials.
[14] Liangliang Zhang,et al. Vacuum-Assisted Strong Luminescence Thermal Enhancement in NaYF4:Ho3+/Yb3+ Upconverting Nanocrystals: A Conclusive Evidence for the Effect of Water Desorption , 2022, ACS Sustainable Chemistry & Engineering.
[15] Ge Zhu,et al. Towards highly efficient NIR II response up-conversion phosphor enabled by long lifetimes of Er3+ , 2022, Nature Communications.
[16] Liguang Xu,et al. Enantiomeric NIR-II Emitting Rare-earth-doped Ag2Se Nanoparticles with Differentiated In Vivo Imaging Efficiencies. , 2022, Angewandte Chemie.
[17] Z. Fu,et al. Sc3+-induced double optimization strategies for boosting NIR-II luminescence and improving thermometer performance in CaF2: Nd3+, Nd3+/Yb3+@NaYF4 nanocrystals , 2022, Chemical Engineering Journal.
[18] Daqin Chen,et al. Engineering upconverting core-shell nano-probe for spectral responsive fluid velocimetry , 2022, Nano Research.
[19] Degang Deng,et al. Designing Optical Thermometers Using Down/Upconversion Ca14Al10Zn6O35: Ti4+, Eu3+/Yb3+, Er3+ Thermosensitive Phosphors. , 2022, Inorganic chemistry.
[20] Yoshihiro Shimizu,et al. A red light–responsive photoswitch for deep tissue optogenetics , 2022, Nature Biotechnology.
[21] Kai Liu,et al. Rare-earth based materials: an effective toolbox for brain imaging, therapy, monitoring and neuromodulation , 2022, Light, science & applications.
[22] Xianju Zhou,et al. Dual-mode optical thermometry based on intervalence charge transfer excitations in Tb3+/Pr3+ co-doped CaNb2O6 phosphors , 2022, Ceramics International.
[23] Wei Feng,et al. Influence on the Apparent Luminescent Lifetime of Rare-Earth Upconversion Nanoparticles by Quenching the Sensitizer's Excited State for Hypochlorous Acid Detection and Bioimaging. , 2022, ACS applied materials & interfaces.
[24] Fugen Wu,et al. Fluorescence intensity ratio optical thermometer YNbO4: Pr3+, Tb3+ based on intervalence charge transfer , 2022, Powder Technology.
[25] Qianming Wang,et al. Realization of an Optical Thermometer via Structural Confinement and Energy Transfer. , 2021, Inorganic chemistry.
[26] Shanshan Han,et al. Enhancement of red upconversion emission intensity of Ho3+ ions in NaLuF4:Yb3+/Ho3+/Ce3+@NaLuF4 core-shell nanoparticles , 2021, Journal of Rare Earths.
[27] Shiqing Xu,et al. Constructing highly sensitive ratiometric nanothermometers based on indirectly thermally coupled levels. , 2021, Chemical communications.
[28] Xin Liu,et al. Energy migration control of multi-modal emissions in an Er3+ doped nanostructure toward information encryption and deep learning decoding. , 2021, Angewandte Chemie.
[29] G. Lu,et al. A near-infrared light triggered fluormetric biosensor for sensitive detection of acetylcholinesterase activity based on NaErF4: 0.5 % Ho3+@NaYF4 upconversion nano-probe. , 2021, Talanta.
[30] Z. Fu,et al. High-performance disease diagnosis fluorescent probe based on new type structure YbF3: Er3+@SiO2@GQDs , 2021 .
[31] S. Shelar,et al. Super Bright Red Upconversion in NaErF4:0.5%Tm@NaYF4:20%Yb Nanoparticles for Anti-counterfeit and Bioimaging Applications. , 2020, ACS applied materials & interfaces.
[32] S. Zeng,et al. 808 nm light triggered lanthanide nanoprobes with enhanced down-shifting emission beyond 1500 nm for imaging-guided resection surgery of tumor and vascular visualization , 2020, Theranostics.
[33] Hang Zhang,et al. A ratiometric optical thermometer with multi-color emission and high sensitivity based on double perovskite LaMg0.402Nb0.598O3: Pr3+ thermochromic phosphors , 2020 .
[34] Y. Mao,et al. Enhanced single-band red upconversion luminescence of α-NaErF4:Mn nanoparticles by a novel hollow-shell structure under multiple wavelength excitation , 2019, Journal of Alloys and Compounds.
[35] S. Mali,et al. Holmium Rare Earth Metal Ion Incorporated and Ambient-Air Processed All-Inorganic γ-CsPbI2.5Br0.5 Perovskite Solar Cells Yielding High Efficiency and Stable Performance , 2023, Journal of Materials Chemistry A.
[36] Hongya Wang,et al. Enhanced radioluminescence of NaLuF4:Eu3+ nanoscintillators by terbium sensitization for X-ray imaging , 2023, Inorganic Chemistry Frontiers.
[37] Kai Li,et al. Extraordinary low-temperature fluorescent sensing properties in novel KBaY(MoO4)3:Yb3+,Ho3+ materials based on FIR of Ho3+ transitions 5F5(1)→5I8/5S2→5I8 , 2022, Journal of Materials Chemistry C.