Optical nanoprobes for biomedical applications: shining a light on upconverting and near-infrared emitting nanoparticles for imaging, thermal sensing, and photodynamic therapy.
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[1] F. A. Saunders,et al. New Regularities in the Spectra of the Alkaline Earths , 1925 .
[2] Th. Förster. Zwischenmolekulare Energiewanderung und Fluoreszenz , 1948 .
[3] D. L. Dexter. A Theory of Sensitized Luminescence in Solids , 1953 .
[4] G. S. Ofelt. Intensities of Crystal Spectra of Rare‐Earth Ions , 1962 .
[5] B. Judd,et al. OPTICAL ABSORPTION INTENSITIES OF RARE-EARTH IONS , 1962 .
[6] G. Dieke,et al. The Spectra of the Doubly and Triply Ionized Rare Earths , 1963 .
[7] D. Mccumber,et al. Einstein Relations Connecting Broadband Emission and Absorption Spectra , 1964 .
[8] M. Inokuti,et al. Influence of Energy Transfer by the Exchange Mechanism on Donor Luminescence , 1965 .
[9] M. J. Weber,et al. Probabilities for Radiative and Nonradiative Decay of Er 3 + in La F 3 , 1967 .
[10] M. Yokota,et al. Effects of Diffusion on Energy Transfer by Resonance , 1967 .
[11] M. J. Weber,et al. Radiative and Multiphonon Relaxation of Rare-Earth Ions in Y 2 O 3 , 1968 .
[12] H. Moos,et al. MULTIPHONON ORBIT-LATTICE RELAXATION OF EXCITED STATES OF RARE-EARTH IONS IN CRYSTALS. , 1968 .
[13] D. L. Dexter,et al. Phonon Sidebands, Multiphonon Relaxation of Excited States, and Phonon-Assisted Energy Transfer between Ions in Solids , 1970 .
[14] C. B. Duke,et al. Resonant Energy Transfer between Localized Electronic States in a Crystal , 1971 .
[15] Tsuyoshi Kano,et al. NaLnF4 : Yb3 + , Er3 + ( Ln : Y , Gd , La ) : Efficient Green‐Emitting Infrared‐Excited Phosphors , 1972 .
[16] A. Bril',et al. On the Efficiency of Yb3+‐Er3+ Activated Up‐Conversion Phosphors , 1975 .
[17] A. Nitzan,et al. Spectroscopic properties of molecules interacting with small dielectric particles , 1981 .
[18] E. Yablonovitch,et al. Inhibited spontaneous emission in solid-state physics and electronics. , 1987, Physical review letters.
[19] B. Henderson,et al. Optical spectroscopy of inorganic solids , 1989 .
[20] S. Cotton. Lanthanide and Actinide Chemistry , 1991 .
[21] Lloyd L. Chase,et al. Infrared cross-section measurements for crystals doped with Er/sup 3+/, Tm/sup 3+/, and Ho/sup 3+/ , 1992 .
[22] L. Brand,et al. Resonance energy transfer: methods and applications. , 1994, Analytical biochemistry.
[23] R. Clegg. Fluorescence resonance energy transfer. , 2020, Current Opinion in Biotechnology.
[24] Markus Pollnau,et al. Near-infrared to visible upconversion in Er3+ doped Cs3Lu2Cl9, Cs3Lu2Br9, and Cs3Y2I9 excited at 1.54 µm , 1999 .
[25] M. DeRosa. Photosensitized singlet oxygen and its applications , 2002 .
[26] R. Jain,et al. Photodynamic therapy for cancer , 2003, Nature Reviews Cancer.
[27] F. Auzel. Upconversion and anti-Stokes processes with f and d ions in solids. , 2004, Chemical reviews.
[28] A. Polman,et al. Förster transfer and the local optical density of states in erbium-doped silica , 2005 .
[29] A. N. Bashkatov,et al. Optical properties of human skin, subcutaneous and mucous tissues in the wavelength range from 400 to 2000 nm , 2005 .
[30] J. G. Solé,et al. An Introduction to the Optical Spectroscopy of Inorganic Solids , 2005 .
[31] Sylvain Girard,et al. Accurate efficiency evaluation of energy-transfer processes in phosphosilicate Er3+-Yb3+-codoped fibers , 2006 .
[32] Roland Martin,et al. Experimental evidence of the validity of the McCumber theory relating emission and absorption for rare-earth glasses , 2006 .
[33] S. Cotton. Lanthanide and Actinide Chemistry: Cotton/Lanthanide and Actinide Chemistry , 2006 .
[34] Ya-Wen Zhang,et al. High-quality sodium rare-earth fluoride nanocrystals: controlled synthesis and optical properties. , 2006, Journal of the American Chemical Society.
[35] Demetra A. Chengelis,et al. A strategy to protect and sensitize near-infrared luminescent Nd3+ and Yb3+: organic tropolonate ligands for the sensitization of Ln(3+)-doped NaYF4 nanocrystals. , 2007, Journal of the American Chemical Society.
[36] Manoj Kumar,et al. Versatile photosensitizers for photodynamic therapy at infrared excitation. , 2007, Journal of the American Chemical Society.
[37] Nicholas A. Kotov,et al. Theory of plasmon-enhanced Förster energy transfer in optically excited semiconductor and metal nanoparticles , 2007 .
[38] Kevin Brindle,et al. New approaches for imaging tumour responses to treatment , 2008, Nature Reviews Cancer.
[39] Yong Zhang,et al. Upconversion fluorescence imaging of cells and small animals using lanthanide doped nanocrystals. , 2008, Biomaterials.
[40] Shuping Xu,et al. Near-Infrared Fluorescent Materials for Sensing of Biological Targets , 2008, Sensors.
[41] M. C. Mancini,et al. Bioimaging: second window for in vivo imaging. , 2009, Nature nanotechnology.
[42] Ralph Weissleder,et al. Upconverting luminescent nanomaterials: application to in vivo bioimaging. , 2009, Chemical communications.
[43] Christopher G. Morgan,et al. The Active‐Core/Active‐Shell Approach: A Strategy to Enhance the Upconversion Luminescence in Lanthanide‐Doped Nanoparticles , 2009 .
[44] Q. Zhang,et al. Concentration-dependent near-infrared quantum cutting in NaYF4:Pr3+, Yb3+ phosphor , 2009 .
[45] Chin‐Hung Lai,et al. A New Series of Quadrupolar Type Two‐Photon Absorption Chromophores Bearing 11, 12‐Dibutoxydibenzo[a,c]‐phenazine Bridged Amines; Their Applications in Two‐Photon Fluorescence Imaging and Two‐Photon Photodynamic Therapy , 2009 .
[46] A. Yodh,et al. Diffuse optics for tissue monitoring and tomography , 2010, Reports on progress in physics. Physical Society.
[47] Francisco Sanz-Rodríguez,et al. Temperature sensing using fluorescent nanothermometers. , 2010, ACS nano.
[48] Probing cytotoxicity of gadolinium hydroxide nanostructures. , 2010, The journal of physical chemistry. B.
[49] Erlong Zhang,et al. A review of NIR dyes in cancer targeting and imaging. , 2011, Biomaterials.
[50] Cédric Louis,et al. Biodistribution study of nanometric hybrid gadolinium oxide particles as a multimodal SPECT/MR/optical imaging and theragnostic agent. , 2011, Bioconjugate chemistry.
[51] Renren Deng,et al. Tuning upconversion through energy migration in core-shell nanoparticles. , 2011, Nature materials.
[52] Y. Nagasaki,et al. Near-infrared (1550 nm) in vivo bioimaging based on rare-earth doped ceramic nanophosphors modified with PEG-b-poly(4-vinylbenzylphosphonate). , 2011, Nanoscale.
[53] Huabei Jiang,et al. Current and future clinical applications for optical imaging of cancer: from intraoperative surgical guidance to cancer screening. , 2011, Seminars in oncology.
[54] F. Cussó,et al. Temperature Sensing with Up-Converting Submicron-Sized LiNbO3:Er3+/Yb3+ Particles , 2011 .
[55] Jan C. Hummelen,et al. Broadband dye-sensitized upconversion of near-infrared light , 2012, Nature Photonics.
[56] A. Mosk,et al. Nanophotonic control of the Förster resonance energy transfer efficiency. , 2011, Physical review letters.
[57] Kohei Soga,et al. In vitro and in vivo investigations of upconversion and NIR emitting Gd2O3:Er3+,Yb3+ nanostructures for biomedical applications , 2012, Journal of Materials Science: Materials in Medicine.
[58] Wing-Cheung Law,et al. Core/shell NaGdF4:Nd(3+)/NaGdF4 nanocrystals with efficient near-infrared to near-infrared downconversion photoluminescence for bioimaging applications. , 2012, ACS nano.
[59] W. Cai,et al. Enhanced upconversion emission in Yb3+ and Er3+ codoped NaGdF4 nanocrystals by introducing Li+ ions. , 2012, Nanoscale.
[60] J. C. Goldschmidt,et al. Modeling upconversion of erbium doped microcrystals based on experimentally determined Einstein coefficients , 2011, 1110.2309.
[61] Paras N. Prasad,et al. (α-NaYbF4:Tm(3+))/CaF2 core/shell nanoparticles with efficient near-infrared to near-infrared upconversion for high-contrast deep tissue bioimaging. , 2012, ACS nano.
[62] E. Hemmer,et al. Synthesis and toxicity assay of ceramic nanophosphors for bioimaging with near-infrared excitation , 2012 .
[63] Luís D Carlos,et al. Thermometry at the nanoscale. , 2015, Nanoscale.
[64] Muthu Kumara Gnanasammandhan,et al. In vivo photodynamic therapy using upconversion nanoparticles as remote-controlled nanotransducers , 2012, Nature Medicine.
[65] Kohei Soga,et al. Cytotoxic aspects of gadolinium oxide nanostructures for up-conversion and NIR bioimaging. , 2013, Acta biomaterialia.
[66] S. Fischer,et al. Highly Efficient IR to NIR Upconversion in Gd2O2S: Er3+ for Photovoltaic Applications , 2013 .
[67] Walter J. Akers,et al. Multi-spectral analysis of animal tissues in the second NIR window based on endogenous chromophores , 2013, Photonics West - Biomedical Optics.
[68] Qiang Sun,et al. Mechanistic investigation of photon upconversion in Nd(3+)-sensitized core-shell nanoparticles. , 2013, Journal of the American Chemical Society.
[69] Zhuang Liu,et al. Upconversion Nanoparticles for Photodynamic Therapy and Other Cancer Therapeutics , 2013, Theranostics.
[70] Xiaoyuan Chen,et al. Nanotheranostics for personalized medicine , 2013, Expert review of molecular diagnostics.
[71] Wei Fan,et al. Engineering the Upconversion Nanoparticle Excitation Wavelength: Cascade Sensitization of Tri‐doped Upconversion Colloidal Nanoparticles at 800 nm , 2013 .
[72] D. Sardar,et al. High upconversion quantum yield at low pump threshold in Er3+/Yb3+ doped La2O2S phosphor , 2013 .
[73] Kohei Soga,et al. Upconverting and NIR emitting rare earth based nanostructures for NIR-bioimaging. , 2013, Nanoscale.
[74] Fenghua Li,et al. Preparation and drug-delivery properties of hollow YVO4:Ln3+ and mesoporous YVO4:Ln3+@nSiO2@mSiO2 (Ln = Eu, Yb, Er, and Ho). , 2013, Journal of materials chemistry. B.
[75] Wei Huang,et al. Enhancing solar cell efficiency: the search for luminescent materials as spectral converters. , 2013, Chemical Society reviews.
[76] P. Acosta-Mora,et al. Role of the Yb3+ concentration in the high efficient UV-blue up-conversion emission from hydrothermally grown Yb3+/Er3+-doped K2YF5 crystals , 2013 .
[77] Ling-Dong Sun,et al. Nd(3+)-sensitized upconversion nanophosphors: efficient in vivo bioimaging probes with minimized heating effect. , 2013, ACS nano.
[78] Hai Zhu,et al. Upconverting near-infrared light through energy management in core-shell-shell nanoparticles. , 2013, Angewandte Chemie.
[79] Benoit Dubertret,et al. Design of new quantum dot materials for deep tissue infrared imaging. , 2013, Advanced drug delivery reviews.
[80] S. Laurent,et al. High Relaxivities and Strong Vascular Signal Enhancement for NaGdF4 Nanoparticles Designed for Dual MR/Optical Imaging , 2013, Advanced healthcare materials.
[81] S. Fischer,et al. Relation between Excitation Power Density and Er3+ Doping Yielding the Highest Absolute Upconversion Quantum Yield , 2014 .
[82] Robert R. Alfano,et al. Deep optical imaging of tissue using the second and third near-infrared spectral windows , 2014, Journal of biomedical optics.
[83] Thomas Hirsch,et al. Upconversion nanoparticles: from hydrophobic to hydrophilic surfaces. , 2014, Accounts of chemical research.
[84] Xiaogang Liu,et al. Enhancing luminescence in lanthanide-doped upconversion nanoparticles. , 2014, Angewandte Chemie.
[85] D. Sardar,et al. Stokes emission in GdF₃:Nd³⁺ nanoparticles for bioimaging probes. , 2014, Nanoscale.
[86] Steve Smith,et al. Revisiting the NIR-to-Visible Upconversion Mechanism in β-NaYF4:Yb(3+),Er(3.). , 2014, The journal of physical chemistry letters.
[87] T. Senden,et al. Photonic effects on the Förster resonance energy transfer efficiency , 2014, Nature Communications.
[88] E. Hemmer,et al. Lanthanide-based nanostructures for optical bioimaging: Small particles with large promise , 2014, MRS Bulletin.
[89] Xiaoming Li,et al. Epitaxial seeded growth of rare-earth nanocrystals with efficient 800 nm near-infrared to 1525 nm short-wavelength infrared downconversion photoluminescence for in vivo bioimaging. , 2014, Angewandte Chemie.
[90] Wei Feng,et al. Water-soluble lanthanide upconversion nanophosphors: Synthesis and bioimaging applications in vivo , 2014 .
[91] A. Habtemariam,et al. Near infrared photolysis of a Ru polypyridyl complex by upconverting nanoparticles. , 2014, Chemical communications.
[92] P. Prasad,et al. Upconversion Nanoparticles: Design, Nanochemistry, and Applications in Theranostics , 2014, Chemical reviews.
[93] J. G. Solé,et al. Nd3+ doped LaF3 nanoparticles as self-monitored photo-thermal agents , 2014 .
[94] C. Jeffrey Brinker,et al. Surface Interactions with Compartmentalized Cellular Phosphates Explain Rare Earth Oxide Nanoparticle Hazard and Provide Opportunities for Safer Design , 2014, ACS nano.
[95] J. G. Solé,et al. Neodymium-doped LaF(3) nanoparticles for fluorescence bioimaging in the second biological window. , 2014, Small.
[96] Haijun Zhang,et al. A comparison of TiO2 and ZnO nanoparticles as photosensitizers in photodynamic therapy for cancer. , 2014, Journal of biomedical nanotechnology.
[97] D. Jaque,et al. Er:Yb:NaY2F5O up-converting nanoparticles for sub-tissue fluorescence lifetime thermal sensing. , 2014, Nanoscale.
[98] Mostafa A. El-Sayed,et al. The optical, photothermal, and facile surface chemical properties of gold and silver nanoparticles in biodiagnostics, therapy, and drug delivery , 2014, Archives of Toxicology.
[99] Yunlong Deng,et al. Ho3+ doped NaGdF4 nanoparticles as MRI/optical probes for brain glioma imaging. , 2014, Journal of materials chemistry. B.
[100] J. G. Solé,et al. 1.3 μm emitting SrF2:Nd3+ nanoparticles for high contrast in vivo imaging in the second biological window , 2015, Nano Research.
[101] Peng Zhang,et al. Enhancing multiphoton upconversion through energy clustering at sublattice level. , 2014, Nature materials.
[102] Xiaohong Yan,et al. Optical temperature sensing of rare-earth ion doped phosphors , 2015 .
[103] Chunhua Lu,et al. Li+ ions doping core-shell nanostructures: an approach to significantly enhance upconversion luminescence of lanthanide-doped nanocrystals , 2015 .
[104] Youmin Guo,et al. NaGdF4:Yb(3+)/Er(3+)@NaGdF4:Nd(3+)@Sodium-Gluconate: Multifunctional and Biocompatible Ultrasmall Core-Shell Nanohybrids for UCL/MR/CT Multimodal Imaging. , 2015, ACS applied materials & interfaces.
[105] A. Benayas,et al. Nd:YAG Near‐Infrared Luminescent Nanothermometers , 2015 .
[106] J. G. Solé,et al. Hybrid Nanostructures for High‐Sensitivity Luminescence Nanothermometry in the Second Biological Window , 2015, Advanced materials.
[107] Zonghua Wang,et al. Recent advances in synthetic methods and applications of colloidal silver chalcogenide quantum dots , 2015 .
[108] A. Meijerink,et al. Multi-photon quantum cutting in Gd2O2S:Tm3+ to enhance the photo-response of solar cells , 2015, Light: Science & Applications.
[109] Yi Xie,et al. Ultrathin Black Phosphorus Nanosheets for Efficient Singlet Oxygen Generation. , 2015, Journal of the American Chemical Society.
[110] Meiying Wang,et al. Enhancing the imaging and biosafety of upconversion nanoparticles through phosphonate coating. , 2015, ACS nano.
[111] H. Butt,et al. Upconverting-nanoparticle-assisted photochemistry induced by low-intensity near-infrared light: how low can we go? , 2015, Chemistry.
[112] S. Ding,et al. Target-selective delivery and activation of platinum-based anticancer agents. , 2015, Future medicinal chemistry.
[113] Jianhua Hao,et al. Remarkable NIR Enhancement of Multifunctional Nanoprobes for In Vivo Trimodal Bioimaging and Upconversion Optical/T2‐Weighted MRI‐Guided Small Tumor Diagnosis , 2015 .
[114] Yan Wang,et al. Energy-Cascaded Upconversion in an Organic Dye-Sensitized Core/Shell Fluoride Nanocrystal. , 2015, Nano letters.
[115] Jan Christoph Goldschmidt,et al. Upconversion for Photovoltaics – a Review of Materials, Devices and Concepts for Performance Enhancement , 2015 .
[116] L. Carlos,et al. Boosting the sensitivity of Nd(3+)-based luminescent nanothermometers. , 2015, Nanoscale.
[117] Chao Zhang,et al. Lanthanide Nanoparticles: From Design toward Bioimaging and Therapy. , 2015, Chemical reviews.
[118] Wei Huang,et al. Temporal full-colour tuning through non-steady-state upconversion. , 2015, Nature nanotechnology.
[119] Shuqing He,et al. Ultralow-intensity near-infrared light induces drug delivery by upconverting nanoparticles. , 2015, Chemical communications.
[120] James G. Stanfill,et al. A photoCORM nanocarrier for CO release using NIR light. , 2015, Chemical communications.
[121] Hao Li,et al. In vitro photodynamic therapy based on magnetic-luminescent Gd2O3:Yb,Er nanoparticles with bright three-photon up-conversion fluorescence under near-infrared light. , 2015, Dalton transactions.
[122] Xiaomin Liu,et al. Excitation energy migration dynamics in upconversion nanomaterials. , 2015, Chemical Society reviews.
[123] Ahmed H. Elmenoufy,et al. Nanocomposite-Based Photodynamic Therapy Strategies for Deep Tumor Treatment. , 2015, Small.
[124] Kyungsuk Yum,et al. Single‐walled carbon nanotubes as near‐infrared optical biosensors for life sciences and biomedicine , 2015, Biotechnology journal.
[125] Dong Soo Lee,et al. Nanomedicine: Past, present and future - A global perspective. , 2015, Biochemical and biophysical research communications.
[126] L. Salassa,et al. Near infrared activation of an anticancer Pt(IV) complex by Tm-doped upconversion nanoparticles. , 2015, Chemical communications.
[127] W. Stręk,et al. Near infrared absorbing near infrared emitting highly-sensitive luminescent nanothermometer based on Nd(3+) to Yb(3+) energy transfer. , 2015, Physical chemistry chemical physics : PCCP.
[128] Sailing He,et al. Optically investigating Nd(3+)-Yb(3+) cascade sensitized upconversion nanoparticles for high resolution, rapid scanning, deep and damage-free bio-imaging. , 2015, Biomedical optics express.
[129] Jan Christoph Goldschmidt,et al. Upconverting core-shell nanocrystals with high quantum yield under low irradiance: On the role of isotropic and thick shells , 2015 .
[130] N. Hildebrandt,et al. Quantum dots: bright and versatile in vitro and in vivo fluorescence imaging biosensors. , 2015, Chemical Society reviews.
[131] Jun Lin,et al. UV-emitting upconversion-based TiO2 photosensitizing nanoplatform: near-infrared light mediated in vivo photodynamic therapy via mitochondria-involved apoptosis pathway. , 2015, ACS nano.
[132] Z. Ji,et al. Nd(3+)-Sensitized Ho(3+) Single-Band Red Upconversion Luminescence in Core-Shell Nanoarchitecture. , 2015, The journal of physical chemistry letters.
[133] Jing Li,et al. Selectively enhanced red upconversion luminescence and phase/size manipulation via Fe(3+) doping in NaYF4:Yb,Er nanocrystals. , 2015, Nanoscale.
[134] Xiao Zhang,et al. Recent Advances in Upconversion Nanoparticles‐Based Multifunctional Nanocomposites for Combined Cancer Therapy , 2015, Advanced materials.
[135] Guokui Liu. Advances in the theoretical understanding of photon upconversion in rare-earth activated nanophosphors. , 2015, Chemical Society reviews.
[136] P. May,et al. Disputed Mechanism for NIR-to-Red Upconversion Luminescence in NaYF4:Yb(3+),Er(3+). , 2015, The journal of physical chemistry. A.
[137] Xian Chen,et al. Photon upconversion in core-shell nanoparticles. , 2015, Chemical Society reviews.
[138] A. Speghini,et al. Intense ultraviolet upconversion in water dispersible SrF2:Tm3+,Yb3+ nanoparticles: the effect of the environment on light emissions , 2015 .
[139] Mauro Tonelli,et al. Record efficient upconverter solar cell devices with optimized bifacial silicon solar cells and monocrystalline BaY2F8:30% Er3+ upconverter , 2015 .
[140] S. Feng,et al. Water‐Soluble, Monodisperse, Lanthanide‐Doped Y(Gd)VO4 Nanocrystals as Promising Multimodal Bioprobe , 2015 .
[141] A. Meijerink,et al. Modeling the cooperative energy transfer dynamics of quantum cutting for solar cells , 2015 .
[142] Kyung-Han Lee,et al. Molecular Imaging in the Era of Personalized Medicine , 2015, Journal of pathology and translational medicine.
[143] Artur Bednarkiewicz,et al. Upconverting nanoparticles: assessing the toxicity. , 2015, Chemical Society reviews.
[144] Andreas Sedlmeier,et al. Surface modification and characterization of photon-upconverting nanoparticles for bioanalytical applications. , 2015, Chemical Society reviews.
[145] B. Cohen,et al. Rationally Designed Energy Transfer in Upconverting Nanoparticles , 2015, Advanced materials.
[146] L. Prodi,et al. Imaging agents based on lanthanide doped nanoparticles. , 2015, Chemical Society reviews.
[147] T. Hasan,et al. Photonanomedicine: a convergence of photodynamic therapy and nanotechnology. , 2016, Nanoscale.
[148] E. Hemmer,et al. Multifunctional Liposome Nanocarriers Combining Upconverting Nanoparticles and Anticancer Drugs. , 2016, The journal of physical chemistry. B.
[149] D. Jaque,et al. Luminescent nanoprobes for thermal bio-sensing: Towards controlled photo-thermal therapies , 2016 .
[150] M. Quintanilla,et al. Near-infrared triggered generation of reactive oxygen species from upconverting nanoparticles decorated with an organoiridium complex. , 2016, Journal of materials chemistry. B.
[151] Chenglin Yan,et al. Lanthanide Ion Doped Upconverting Nanoparticles: Synthesis, Structure and Properties. , 2016, Small.
[152] A. Wu,et al. 808 nm-excited upconversion nanoprobes with low heating effect for targeted magnetic resonance imaging and high-efficacy photodynamic therapy in HER2-overexpressed breast cancer. , 2016, Biomaterials.
[153] H. Niioka,et al. Enhancement of Near-infrared Luminescence of Y2O3:Ln, Yb (Ln = Tm, Ho, Er) by Li-ion Doping for Cellular Bioimaging , 2016 .
[154] Zhiguang Wu,et al. Stem-Cell-Membrane Camouflaging on Near-Infrared Photoactivated Upconversion Nanoarchitectures for in Vivo Remote-Controlled Photodynamic Therapy. , 2016, ACS applied materials & interfaces.
[156] W. Cai,et al. Scintillating Nanoparticles as Energy Mediators for Enhanced Photodynamic Therapy. , 2016, ACS nano.
[157] Wei Feng,et al. High-Contrast Visualization of Upconversion Luminescence in Mice Using Time-Gating Approach. , 2016, Analytical chemistry.
[158] K. Soga,et al. Over-1000 nm Near-infrared Fluorescence and SPECT/CT Dual-modal in vivo Imaging Based on Rare-earth Doped Ceramic Nanophosphors , 2016 .
[159] William K. Stell,et al. Nitric Oxide (NO) Mediates the Inhibition of Form-Deprivation Myopia by Atropine in Chicks , 2016, Scientific Reports.
[160] L. Pi,et al. Evolution of the intrinsic electronic phase separation in La0.6Er0.1Sr0.3MnO3 perovskite , 2016, Scientific Reports.
[161] Weisheng Guo,et al. A Protein-Polymer Bioconjugate-Coated Upconversion Nanosystem for Simultaneous Tumor Cell Imaging, Photodynamic Therapy, and Chemotherapy. , 2016, ACS applied materials & interfaces.
[162] Peng Du,et al. Citric-assisted sol-gel based Er3+/Yb3+-codoped Na0.5Gd0.5MoO4: A novel highly-efficient infrared-to-visible upconversion material for optical temperature sensors and optical heaters , 2016 .
[163] Hanchun Yao,et al. A smart upconversion-based light-triggered polymer for synergetic chemo-photodynamic therapy and dual-modal MR/UCL imaging. , 2016, Nanomedicine : nanotechnology, biology, and medicine.
[164] Wei Feng,et al. Nd3+-doped LiYF4 nanocrystals for bio-imaging in the second near-infrared window. , 2016, Journal of materials chemistry. B.
[165] Xueru Zhang,et al. Optical temperature sensing in β-NaLuF4:Yb3+/Er3+/Tm3+ based on thermal, quasi-thermal and non-thermal coupling levels , 2016 .
[166] A. Habtemariam,et al. Upconverting nanoparticles for the near infrared photoactivation of transition metal complexes: new opportunities and challenges in medicinal inorganic photochemistry. , 2016, Dalton transactions.
[167] Jun Lin,et al. Multifunctional UCNPs@PDA-ICG nanocomposites for upconversion imaging and combined photothermal/photodynamic therapy with enhanced antitumor efficacy. , 2016, Journal of materials chemistry. B.
[168] Y. Baba,et al. Multispectral Emissions of Lanthanide-Doped Gadolinium Oxide Nanophosphors for Cathodoluminescence and Near-Infrared Upconversion/Downconversion Imaging , 2016, Nanomaterials.
[169] K. Soo,et al. In vivo Biocompatibility, Biodistribution and Therapeutic Efficiency of Titania Coated Upconversion Nanoparticles for Photodynamic Therapy of Solid Oral Cancers , 2016, Theranostics.
[170] Ken-Tye Yong,et al. New Generation Cadmium-Free Quantum Dots for Biophotonics and Nanomedicine. , 2016, Chemical reviews.
[171] Fujin Ai,et al. An upconversion nanoplatform for simultaneous photodynamic therapy and Pt chemotherapy to combat cisplatin resistance. , 2016, Dalton transactions.
[172] Qiwen Chen,et al. Recent advances in different modal imaging-guided photothermal therapy. , 2016, Biomaterials.
[173] B. Majaron,et al. Dissolution Mechanism of Upconverting AYF4:Yb,Tm (A = Na or K) Nanoparticles in Aqueous Media. , 2016, Langmuir : the ACS journal of surfaces and colloids.
[174] K. Horchani-Naifer,et al. La2O3: Tm, Yb, Er upconverting nano-oxides for sub-tissue lifetime thermal sensing , 2016 .
[175] Daniel Jaque,et al. LaF3 core/shell nanoparticles for subcutaneous heating and thermal sensing in the second biological-window , 2016 .
[176] N. Branda,et al. Using low-energy near infrared light and upconverting nanoparticles to trigger photoreactions within supramolecular assemblies. , 2016, Chemical communications.
[177] Chongfeng Guo,et al. Sensitivity Modulation of Upconverting Thermometry through Engineering Phonon Energy of a Matrix. , 2016, ACS applied materials & interfaces.
[178] Shuqing He,et al. Design of infrared-emitting rare earth doped nanoparticles and nanostructured composites , 2016 .
[179] M. Dramićanin. Sensing temperature via downshifting emissions of lanthanide-doped metal oxides and salts. A review , 2016, Methods and applications in fluorescence.
[180] Dalong Ni,et al. Upconversion nano-photosensitizer targeting into mitochondria for cancer apoptosis induction and cyt c fluorescence monitoring , 2016, Nano Research.
[181] Wei Huang,et al. Enabling Förster Resonance Energy Transfer from Large Nanocrystals through Energy Migration. , 2016, Journal of the American Chemical Society.
[182] Kristofer J. Thurecht,et al. Nanoparticle-Based Medicines: A Review of FDA-Approved Materials and Clinical Trials to Date , 2016, Pharmaceutical Research.
[183] J. Jiménez,et al. New strategies invonving upconverting nanoparticles for determining moderate temperatures by luminescence thermometry , 2016 .
[184] Wei Fan,et al. Dye-Sensitized Core/Active Shell Upconversion Nanoparticles for Optogenetics and Bioimaging Applications. , 2016, ACS nano.
[185] T. Grzyb,et al. Up-conversion luminescence of Yb3+ and Er3+ doped YPO4, LaPO4 and GdPO4 nanocrystals , 2016 .
[186] Quan Yuan,et al. Lanthanide‐Doped Nanoparticles with Near‐Infrared‐to‐Near‐Infrared Luminescence for Bioimaging , 2016 .
[187] The fine control of porous pompon-like Mg-incorporated .ALPHA..ALPHA.-Ni(OH)2 for enhanced supercapacities , 2016 .
[188] Y. Baba,et al. Correlative near-infrared light and cathodoluminescence microscopy using Y2O3:Ln, Yb (Ln = Tm, Er) nanophosphors for multiscale, multicolour bioimaging , 2016, Scientific Reports.
[189] M. Hsiao,et al. Plasmon-Enhanced Photodynamic Cancer Therapy by Upconversion Nanoparticles Conjugated with Au Nanorods. , 2016, ACS applied materials & interfaces.
[190] D. Jaque,et al. In vivo autofluorescence in the biological windows: the role of pigmentation , 2016, Journal of biophotonics.
[191] Sailing He,et al. Controlling the excitation of upconverting luminescence for biomedical theranostics: neodymium sensitizing , 2016 .
[192] Heidi Abrahamse,et al. New Photosensitizers For Photodynamic Therapy , 1990, [1990] Proceedings of the Twelfth Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[193] A. V. Nechaev,et al. Riboflavin photoactivation by upconversion nanoparticles for cancer treatment , 2016, Scientific Reports.
[194] T. Carell,et al. M. Vrabel and T. Carell for Cycloadditions in Bioorthogonal Chemistry , 2016, Topics in Current Chemistry.
[195] I. Kwon,et al. Targeted Nanotheranostics for Future Personalized Medicine: Recent Progress in Cancer Therapy , 2016, Theranostics.
[196] Yumeng Chen,et al. An upconversion nanoparticle/Ru(II) polypyridyl complex assembly for NIR-activated release of a DNA covalent-binding agent , 2016 .
[197] M. A. Kurochkin,et al. Nd3+-doped YVO4 nanoparticles for luminescence nanothermometry in the first and second biological windows , 2016 .
[198] J. Rocha,et al. Implementing luminescence thermometry at 1.3μm using (GdNd)2O3 nanoparticles , 2016 .
[199] Y. Mao,et al. Understanding the effect of Mn2+ on Yb3+/Er3+ upconversion and obtaining a maximum upconversion fluorescence enhancement in inert-core/active-shell/inert-shell structures , 2016 .
[200] Jun Lin,et al. Integration of Upconversion Nanoparticles and Ultrathin Black Phosphorus for Efficient Photodynamic Theranostics under 808 nm Near-Infrared Light Irradiation , 2016 .
[201] D. Jaque,et al. Self-monitored photothermal nanoparticles based on core-shell engineering. , 2016, Nanoscale.
[202] Juan Carlos Ruiz-Morales,et al. Infrared-light induced curing of photosensitive resins through photon up-conversion for novel cost-effective luminescent 3D-printing technology , 2016 .
[203] W. Stręk,et al. Sensitivity of a Nanocrystalline Luminescent Thermometer in High and Low Excitation Density Regimes , 2016 .
[204] D. Cui,et al. Near-Infrared Light Triggered ROS-activated Theranostic Platform based on Ce6-CPT-UCNPs for Simultaneous Fluorescence Imaging and Chemo-Photodynamic Combined Therapy , 2016, Theranostics.
[205] W. Stręk,et al. Water dispersible LiNdP4O12 nanocrystals: New multifunctional NIR-NIR luminescent materials for bio-applications , 2016 .
[206] Xin Li,et al. Near Infrared Light Triggered Reactive Oxygen Species Responsive Upconversion Nanoplatform for Drug Delivery and Photodynamic Therapy , 2016 .
[207] Chunhua Yan,et al. A Versatile Imaging and Therapeutic Platform Based on Dual-Band Luminescent Lanthanide Nanoparticles toward Tumor Metastasis Inhibition. , 2016, ACS nano.
[208] Xiaoman Zhang,et al. Multimodal Upconversion Nanoplatform with a Mitochondria-Targeted Property for Improved Photodynamic Therapy of Cancer Cells. , 2016, Inorganic chemistry.
[209] Adva Krivitsky,et al. Are nanotheranostics and nanodiagnostics-guided drug delivery stepping stones towards precision medicine? , 2016, Drug resistance updates : reviews and commentaries in antimicrobial and anticancer chemotherapy.
[210] S. Fischer,et al. Enhanced upconversion quantum yield near spherical gold nanoparticles - a comprehensive simulation based analysis. , 2016, Optics express.
[211] Zhen Cheng,et al. Upconversion nanocomposites for photo-based cancer theranostics. , 2016, Journal of materials chemistry. B.
[212] Zhuoying Chen,et al. Nanoscale thermometry with fluorescent yttrium-based Er/Yb-doped fluoride nanocrystals , 2016 .
[213] Kunyu Zhang,et al. Near-infrared light-triggered release of small molecules for controlled differentiation and long-term tracking of stem cells in vivo using upconversion nanoparticles. , 2016, Biomaterials.
[214] Photodynamic Therapy Mediated by Upconversion Nanoparticles to Reduce Glial Scar Formation and Promote Hindlimb Functional Recovery After Spinal Cord Injury in Rats. , 2016, Journal of biomedical nanotechnology.
[215] Fei He,et al. NIR-driven graphitic-phase carbon nitride nanosheets for efficient bioimaging and photodynamic therapy. , 2016, Journal of materials chemistry. B.
[216] Kaspar Podgorski,et al. Brain heating induced by near infrared lasers during multi-photon microscopy , 2016, bioRxiv.
[217] G. Mann,et al. Cardioprotective effects of Cu(II)ATSM in human vascular smooth muscle cells and cardiomyocytes mediated by Nrf2 and DJ-1 , 2016, Scientific Reports.
[218] A. V. Nechaev,et al. PEG-modified upconversion nanoparticles for in vivo optical imaging of tumors , 2016 .
[219] Noah D Bronstein,et al. Enhancing Quantum Yield via Local Symmetry Distortion in Lanthanide-Based Upconverting Nanoparticles , 2016 .
[220] B. Liu,et al. Design, fabrication, luminescence and biomedical applications of UCNPs@mSiO2-ZnPc-CDs-P(NIPAm-MAA) nanocomposites. , 2016, Journal of materials chemistry. B.
[221] Ling Huang,et al. Designing Upconversion Nanocrystals Capable of 745 nm Sensitization and 803 nm Emission for Deep-Tissue Imaging. , 2016, Chemistry.
[222] Tymish Y. Ohulchanskyy,et al. Efficient Broadband Upconversion of Near‐Infrared Light in Dye‐Sensitized Core/Shell Nanocrystals , 2016 .
[223] Peng Huang,et al. Graphene-based nanomaterials for bioimaging. , 2016, Advanced drug delivery reviews.
[224] Nanguang Chen,et al. Small Upconverting Fluorescent Nanoparticles for Biosensing and Bioimaging , 2016 .
[225] T. Vermonden,et al. Nanomedicines for advanced cancer treatments: Transitioning towards responsive systems. , 2016, International journal of pharmaceutics.
[226] Fan Zhang. Near-infrared Nanomaterials: Preparation, Bioimaging and Therapy Applications , 2016 .
[227] D. Jaque,et al. Neodymium‐Based Stoichiometric Ultrasmall Nanoparticles for Multifunctional Deep‐Tissue Photothermal Therapy , 2016 .
[228] Curcumin-Conjugated NaYF4:Yb3+, Er3+ Nanoparticles for Photodynamic Therapy Based on Near-Infrared Light , 2016 .
[229] J. G. Solé,et al. Real-time deep-tissue thermal sensing with sub-degree resolution by thermally improved Nd3+:LaF3 multifunctional nanoparticles , 2016 .
[230] Shuang Yao,et al. Optimization of Bi3+ in Upconversion Nanoparticles Induced Simultaneous Enhancement of Near-Infrared Optical and X-ray Computed Tomography Imaging Capability. , 2016, ACS applied materials & interfaces.
[231] François Légaré,et al. Exploiting the biological windows: current perspectives on fluorescent bioprobes emitting above 1000 nm. , 2016, Nanoscale horizons.
[232] S. Sivakumar,et al. Targeted Stealth Polymer Capsules Encapsulating Ln3+-Doped LaVO4 Nanoparticles for Bioimaging Applications. , 2016, ACS biomaterials science & engineering.
[233] K. Al‐Jamal,et al. Functionalized carbon nanotubes : from intracellular uptake and cell-related toxicity to systemic brain delivery , 2016 .
[234] Liguang Xu,et al. Hierarchical Plasmonic Nanorods and Upconversion Core–Satellite Nanoassemblies for Multimodal Imaging‐Guided Combination Phototherapy , 2016, Advanced materials.
[235] Jun Lin,et al. 808 nm Light-triggered and hyaluronic acid-targeted dual-photosensitizers nanoplatform by fully utilizing Nd(3+)-sensitized upconversion emission with enhanced anti-tumor efficacy. , 2016, Biomaterials.
[236] Amit Kumar,et al. Plasmonically Engineered Nanoprobes for Biomedical Applications. , 2016, Journal of the American Chemical Society.
[237] J. Hao,et al. Near-infrared-to-near-infrared down-shifting and upconversion luminescence of KY3F10 with single dopant of Nd3+ ion , 2016 .
[238] Xianguang Ding,et al. 915 nm Light-Triggered Photodynamic Therapy and MR/CT Dual-Modal Imaging of Tumor Based on the Nonstoichiometric Na0.52 YbF3.52 :Er Upconversion Nanoprobes. , 2016, Small.
[239] T. Yanagita,et al. Highly efficient NIR to NIR upconversion of ZnMoO4:Tm3+,Yb3+ phosphors and their application in biological imaging of deep tumors. , 2016, Journal of materials chemistry. B.
[240] Fan Zhang,et al. Facile Peptides Functionalization of Lanthanide-Based Nanocrystals through Phosphorylation Tethering for Efficient in Vivo NIR-to-NIR Bioimaging. , 2016, Analytical chemistry.
[241] Hamidreza Arandiyan,et al. Lanthanide‐Doped Upconversion Nanoparticles: Emerging Intelligent Light‐Activated Drug Delivery Systems , 2016, Advanced science.
[242] H. Gray,et al. Lanthanides: Applications in Cancer Diagnosis and Therapy. , 2016, Journal of medicinal chemistry.
[243] Chu-Song Chen,et al. Near-Infrared Light-Mediated Photodynamic Therapy Nanoplatform by the Electrostatic Assembly of Upconversion Nanoparticles with Graphitic Carbon Nitride Quantum Dots. , 2016, Inorganic chemistry.
[244] Ning Gu,et al. Micro/Nanoscale Thermometry for Cellular Thermal Sensing. , 2016, Small.
[245] W. Stręk,et al. A new generation of highly sensitive luminescent thermometers operating in the optical window of biological tissues , 2016 .
[246] Zibo Li,et al. X-Ray Induced Photodynamic Therapy: A Combination of Radiotherapy and Photodynamic Therapy , 2016, Theranostics.
[247] Deyan Yin,et al. Photodynamic Therapy Induced Enhancement of Tumor Vasculature Permeability Using an Upconversion Nanoconstruct for Improved Intratumoral Nanoparticle Delivery in Deep Tissues , 2016, Theranostics.
[248] Eric A. Owens,et al. Tissue-Specific Near-Infrared Fluorescence Imaging. , 2016, Accounts of chemical research.
[249] Roman Paduch,et al. The role of lymphangiogenesis and angiogenesis in tumor metastasis , 2016, Cellular Oncology.
[250] Peng Huang,et al. Overcoming the Achilles' heel of photodynamic therapy. , 2016, Chemical Society reviews.
[251] Cheryl A. Tajon,et al. Energy-Looping Nanoparticles: Harnessing Excited-State Absorption for Deep-Tissue Imaging. , 2016, ACS nano.
[252] Daniel Jaque,et al. Subtissue Imaging and Thermal Monitoring of Gold Nanorods through Joined Encapsulation with Nd-Doped Infrared-Emitting Nanoparticles. , 2016, Small.
[253] A. Habtemariam,et al. Upconverting Nanoparticles Prompt Remote Near-Infrared Photoactivation of Ru(II)-Arene Complexes. , 2016, Chemistry.
[254] D. Jaque,et al. Unveiling in Vivo Subcutaneous Thermal Dynamics by Infrared Luminescent Nanothermometers. , 2016, Nano letters.
[255] Noah D Bronstein,et al. Precise Tuning of Surface Quenching for Luminescence Enhancement in Core-Shell Lanthanide-Doped Nanocrystals. , 2016, Nano letters.
[256] Y. Gan,et al. Design and Synthesis of Core-Shell-Shell Upconversion Nanoparticles for NIR-Induced Drug Release, Photodynamic Therapy, and Cell Imaging. , 2016, ACS applied materials & interfaces.
[257] Daniel Jaque,et al. Inorganic nanoparticles for optical bioimaging , 2016 .
[258] M. Samoć,et al. Polymeric nanocapsules with up-converting nanocrystals cargo make ideal fluorescent bioprobes , 2016, Scientific Reports.
[259] Guanying Chen,et al. Tunable Narrow Band Emissions from Dye-Sensitized Core/Shell/Shell Nanocrystals in the Second Near-Infrared Biological Window. , 2016, Journal of the American Chemical Society.
[260] Xin Wang,et al. Near-infrared light activated photodynamic therapy of THP-1 macrophages based on core-shell structured upconversion nanoparticles , 2017 .
[261] Jianqing Jiang,et al. Enhancing the upconversion luminescence and photothermal conversion properties of ∼800nm excitable core/shell nanoparticles by dye molecule sensitization. , 2017, Journal of colloid and interface science.
[262] Vineet Kumar Rai,et al. Enhanced green upconversion emission in NaYF4:Er3+/Yb3+/Li+ phosphors for optical thermometry , 2017 .
[263] A. Gouveia-Neto,et al. 1.319 μm excited thulium doped nanoparticles for subtissue thermal sensing with deep penetration and high contrast imaging , 2017 .
[264] T. Nyokong,et al. Characterization of conjugates of NaYF4:Yb,Er,Gd upconversion nanoparticle with aluminium phthalocyanines , 2017 .
[265] Y. Shao,et al. Magnetic and fluorescent Gd2O3:Yb3+/Ln3+ nanoparticles for simultaneous upconversion luminescence/MR dual modal imaging and NIR-induced photodynamic therapy , 2016, International journal of nanomedicine.
[266] A. Benayas,et al. Double rare-earth nanothermometer in aqueous media: opening the third optical transparency window to temperature sensing. , 2017, Nanoscale.
[267] E. Hemmer,et al. Self-assembled photoadditives in polyester films allow stop and go chemical release. , 2017, Acta biomaterialia.
[268] J. G. Solé,et al. Nd3+ ions in nanomedicine: Perspectives and applications , 2017 .
[269] K. Soga,et al. Ratiometric near-infrared fluorescence nanothermometry in the OTN-NIR (NIR II/III) biological window based on rare-earth doped β-NaYF4 nanoparticles. , 2017, Journal of materials chemistry. B.
[270] F. Filace,et al. Prodrug approach: An overview of recent cases. , 2017, European journal of medicinal chemistry.
[271] Zhengquan Li,et al. Sequential coating upconversion NaYF4:Yb,Tm nanocrystals with SiO2 and ZnO layers for NIR-driven photocatalytic and antibacterial applications. , 2017, Materials science & engineering. C, Materials for biological applications.
[272] Hongjie Dai,et al. Near-infrared fluorophores for biomedical imaging , 2017, Nature Biomedical Engineering.
[273] J. Kovač,et al. Optically Detected Degradation of NaYF4:Yb,Tm-Based Upconversion Nanoparticles in Phosphate Buffered Saline Solution. , 2017, Langmuir : the ACS journal of surfaces and colloids.