Optical nanoprobes for biomedical applications: shining a light on upconverting and near-infrared emitting nanoparticles for imaging, thermal sensing, and photodynamic therapy.

Lanthanide (Ln3+)-based nanoparticles (NPs) with light emission in the ultraviolet (UV), visible, and near-infrared (NIR) region under NIR excitation are emerging multifunctional players in the biomedical field. Excitation and emission wavelengths matching the NIR biological transparency windows (700-1870 nm) set the basis for deeper penetration depth into biological tissues due to less absorption, higher resolution as a result of reduced scattering, and improved imaging contrast due to tissue autofluorescence minimization; all being inevitable requirements for optical in vivo bioimaging. Moreover, frequency-conversion in Ln3+-based NPs is sensitive to their thermal environment, thus allowing for application as optical temperature sensors. Additional heating capability opens the pathway to self-monitored optical agents with potential for photothermal therapies (PTTs). UV-visible emitting upconverting nanoparticles (UCNPs) are of particular interest for applications in photodynamic therapies (PDTs) owing to their capability to trigger various photochemical processes upon NIR excitation. It is the aim of this review to highlight the most recent achievements and advances in the field of Ln3+-based NPs as frequency-converting materials for biomedical applications and to identify current trends as well as remaining challenges. Special focus will be set on the most recently presented Ln3+-based systems whose potential has been evaluated in vitro and in vivo as NIR-to-NIR bioimaging probes, NIR-operating nanothermometers and -heaters as well as photochemical agents.

[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.

[155]  Toxicity of Inorganic Nanoparticles Used in Targeted Drug Delivery and Other Biomedical Application: An Updated Account on Concern of Biomedical Nanotoxicology , 2016 .

[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.