Singlet Molecular Oxygen Generation via Unexpected Emission Color-Tunable CdSe/ZnS Nanocrystals for Applications in Photodynamic Therapy
暂无分享,去创建一个
K. Araki | P. Di Mascio | L. Khan | M. Gidlund | H. Brito | S. Miyamoto | F. Prado | M. K. Uchiyama | I. Costa | Zahid U. Khan | R. L. Faria
[1] L. Khan,et al. Strategy to Probe the Local Atomic Structure of Luminescent Rare Earth Complexes by X-ray Absorption Near-Edge Spectroscopy Simulation Using a Machine Learning-Based PyFitIt Approach. , 2023, Inorganic chemistry.
[2] N. Kalarikkal,et al. A Simplified Approach for the Aqueous Synthesis of Luminescent CdSe/ZnS Core/Shell Quantum Dots and Their Applications in Ultrasensitive Determination of the Biomarker 3-Nitro-l-tyrosine. , 2022, Langmuir : the ACS journal of surfaces and colloids.
[3] H. Abrahamse,et al. Semiconductor quantum dots for photodynamic therapy: Recent advances , 2022, Frontiers in Chemistry.
[4] Z. Kim,et al. Characterization of the Interfacial Structures of Core/Shell CdSe/ZnS QDs. , 2022, The journal of physical chemistry letters.
[5] U. Nagashima,et al. Solvent effect on activities of aryloxyl‐radical scavenging and singlet‐oxygen quenching reactions by vitamin E: Addition of water to ethanol solution , 2022, International Journal of Chemical Kinetics.
[6] T. Lian,et al. Bright State Sensitized Triplet Energy Transfer from Quantum Dot to Molecular Acceptor Revealed by Temperature Dependent Energy Transfer Dynamics. , 2022, Nano letters.
[7] Jacob H. Olshansky,et al. Compositionally Tuning Electron Transfer from Photoexcited Core/Shell Quantum Dots via Cation Exchange. , 2022, The journal of physical chemistry letters.
[8] P. K. Mandal,et al. Excitation-Energy-Dependent Photoluminescence Quantum Yield is Inherent to Optically Robust Core/Alloy-Shell Quantum Dots in a Vast Energy Landscape. , 2022, The journal of physical chemistry letters.
[9] E. Weiss,et al. Quantum Dots Photocatalyze Intermolecular [2 + 2] Cycloadditions of Aromatic Alkenes Adsorbed to their Surfaces via van der Waals Interactions. , 2022, Journal of the American Chemical Society.
[10] Swarup Kumar Maji. Luminescence-Tunable ZnS-AgInS2 Nanocrystals for Cancer Cell Imaging and Photodynamic Therapy. , 2022, ACS applied bio materials.
[11] H. Goto,et al. Wide visible-range activatable fluorescence ZnSe:Eu3+/Mn2+@ZnS quantum dots: local atomic structure order and application as a nanoprobe for bioimaging. , 2021, Journal of materials chemistry. B.
[12] K. G. Thomas,et al. Core-Size-Dependent Trapping and Detrapping Dynamics in CdSe/CdS/ZnS Quantum Dots , 2021, The Journal of Physical Chemistry C.
[13] Q. Meng,et al. Visible-light-driven the Oxidative Cleavage of Alkenes Using Water Soluble CdSe Quantum Dots. , 2021, ChemSusChem.
[14] Kaifeng Wu,et al. Molecular Triplet Sensitization and Photon Upconversion Using Colloidal Semiconductor Nanocrystals , 2021, ACS Energy Letters.
[15] N. Jana,et al. Chemically Designed Nanoscale Materials for Controlling Cellular Processes. , 2021, Accounts of chemical research.
[16] P. Sachdev,et al. Quantum dots as a theranostic approach in Alzheimer's disease: a systematic review. , 2021, Nanomedicine.
[17] Christopher M Papa,et al. Controlling Thermally Activated Delayed Photoluminescence in CdSe Quantum Dots through Triplet Acceptor Surface Coverage. , 2021, The journal of physical chemistry letters.
[18] L. Brus,et al. Nanocrystal Quantum Dots: From Discovery to Modern Development. , 2021, ACS nano.
[19] M. Romano,et al. In vivo evaluation of toxicity and anti-inflammatory activity of iron oxide nanoparticles conjugated with ibuprofen. , 2021, Nanomedicine.
[20] B. Rothen‐Rutishauser,et al. Understanding nanoparticle endocytosis to improve targeting strategies in nanomedicine , 2021, Chemical Society reviews.
[21] R. Parton,et al. Key principles and methods for studying the endocytosis of biological and nanoparticle therapeutics , 2021, Nature Nanotechnology.
[22] M. Perbandt,et al. Determination of the Wurtzite and Zincblende Fractions in II–VI Semiconductor Nanowires , 2021 .
[23] C. Murray,et al. Colloidal Quantum Dots as Platforms for Quantum Information Science. , 2020, Chemical reviews.
[24] Woo Je Chang,et al. Charge and energy transfer in the context of colloidal nanocrystals , 2020 .
[25] K. Araki,et al. Docosahexaenoic acid nanoencapsulated with anti-PECAM-1 as co-therapy for atherosclerosis regression. , 2020, European journal of pharmaceutics and biopharmaceutics : official journal of Arbeitsgemeinschaft fur Pharmazeutische Verfahrenstechnik e.V.
[26] H. Hu,et al. Sulfur Precursor Reactivity Affecting the Crystal Phase and Morphology of Cu2-xS Nanoparticles. , 2020, Chemistry.
[27] M. Baptista,et al. Nitric oxide inhibition of lipopolysaccharide-stimulated RAW 247.6 cells by ibuprofen-conjugated iron oxide nanoparticles. , 2020, Nanomedicine.
[28] H. Goto,et al. Orange-Emitting ZnSe:Mn2+ Quantum Dots as Nanoprobes for Macrophages , 2020 .
[29] M. Maggini,et al. Microfluidic Crystallization of Surfactant-Free Doped Zinc Sulfide Nanoparticles for Optical Bioimaging Applications , 2020, ACS applied materials & interfaces.
[30] H. Kim,et al. Quantum Dots: A Review from Concept to Clinic , 2020, Biotechnology journal.
[31] E. Weiss,et al. Colloidal Quantum Dots as Photocatalysts for Triplet Excited State Reactions of Organic Molecules. , 2020, Journal of the American Chemical Society.
[32] S. Wieghold,et al. Green-to-Blue Triplet Fusion Upconversion Sensitized by Anisotropic CdSe Nanoplatelets , 2019, Chemistry of Materials.
[33] Baomin Xu,et al. Organo metal halide perovskites effectively photosensitize the production of singlet oxygen (1Δg). , 2019, Chemical communications.
[34] J. Cadet,et al. Singlet Molecular Oxygen Reactions with Nucleic Acids, Lipids, and Proteins. , 2019, Chemical reviews.
[35] Hao Zhang,et al. Facile Synthesis of Cu–In–S/ZnS Core/Shell Quantum Dots in 1-Dodecanethiol for Efficient Light-Emitting Diodes with an External Quantum Efficiency of 7.8% , 2018, Chemistry of Materials.
[36] J. Plaisier,et al. Low-range thermal investigation of zincblende-type ZnS by combined extended X-ray absorption fine structure and X-ray diffraction techniques , 2018, Physica B: Condensed Matter.
[37] V. Vullev,et al. ZnS Shells Enhance Triplet Energy Transfer from CdSe Nanocrystals for Photon Upconversion , 2018, ACS Photonics.
[38] J. Galisteo‐López,et al. Unexpected Optical Blue Shift in Large Colloidal Quantum Dots by Anionic Migration and Exchange. , 2018, The journal of physical chemistry letters.
[39] Vladislav I. Shcheslavskiy,et al. Water-soluble cyclometalated platinum(ii) and iridium(iii) complexes: synthesis, tuning of the photophysical properties, and in vitro and in vivo phosphorescence lifetime imaging , 2018, RSC advances.
[40] F. Castellano,et al. Thermally activated delayed photoluminescence from pyrenyl-functionalized CdSe quantum dots. , 2018, Nature chemistry.
[41] Thorsten Hansen,et al. Band Gap Energy of Gradient Core–Shell Quantum Dots , 2017 .
[42] Jinkyu Lee,et al. Highly efficient Blue-Emitting CdSe-derived Core/Shell Gradient Alloy Quantum Dots with Improved Photoluminescent Quantum Yield and Enhanced Photostability. , 2017, Langmuir : the ACS journal of surfaces and colloids.
[43] P. Jain,et al. Ion Exchange Transformation of Magic-Sized Clusters , 2016 .
[44] J. Cadet,et al. Singlet molecular oxygen: Düsseldorf - São Paulo, the Brazilian connection. , 2016, Archives of biochemistry and biophysics.
[45] E. Mutlugun,et al. Highly Efficient Cd-Free Alloyed Core/Shell Quantum Dots with Optimized Precursor Concentrations , 2016 .
[46] J. Fierro,et al. Straightforward High-Pressure Synthesis and Characterization of Indium-Based Thiospinels: Photocatalytic Potential for Hydrogen Production , 2016 .
[47] C. Ratcliffe,et al. Bright Gradient-Alloyed CdSexS1–x Quantum Dots Exhibiting Cyan-Blue Emission , 2016 .
[48] E. Lifshitz,et al. Comprehensive Route to the Formation of Alloy Interface in Core/Shell Colloidal Quantum Dots , 2015 .
[49] J. Zapien,et al. Electronic structure and optical properties of CdSxSe1−x solid solution nanostructures from X-ray absorption near edge structure, X-ray excited optical luminescence, and density functional theory investigations , 2014 .
[50] E. Bechara,et al. Excited singlet molecular O2 (1Δg) is generated enzymatically from excited carbonyls in the dark , 2014, Scientific Reports.
[51] X. W. Sun,et al. Facile synthesis of luminescent AgInS₂--ZnS solid solution nanorods. , 2013, Small.
[52] P. Di Mascio,et al. DNA damage by singlet oxygen and cellular protective mechanisms. , 2012, Mutation research. Reviews in mutation research.
[53] D. A. Russell,et al. Insights into the Mechanism of Quantum Dot-Sensitized Singlet Oxygen Production for Photodynamic Therapy , 2012 .
[54] J. Xue,et al. Synthesis of Zn-Doped AgInS2 Nanocrystals and Their Fluorescence Properties , 2012 .
[55] Ramphal Sharma,et al. Bandgap engineering by substitution of S by Se in nanostructured ZnS1−xSex thin films grown by soft chemical route for nontoxic optoelectronic device applications , 2011 .
[56] P. Di Mascio,et al. Thymine hydroperoxide as a potential source of singlet molecular oxygen in DNA. , 2009, Free radical biology & medicine.
[57] P. Di Mascio,et al. Generation of cholesterol carboxyaldehyde by the reaction of singlet molecular oxygen [O2 (1Delta(g))] as well as ozone with cholesterol. , 2009, Chemical research in toxicology.
[58] Liang Li,et al. Core/Shell semiconductor nanocrystals. , 2009, Small.
[59] T. Nyokong,et al. Generation of singlet oxygen via the composites of water-soluble thiol-capped CdTe quantum dots-sulfonated aluminum phthalocyanines. , 2008, The journal of physical chemistry. B.
[60] Tsukasa Torimoto,et al. Facile synthesis of ZnS-AgInS2 solid solution nanoparticles for a color-adjustable luminophore. , 2007, Journal of the American Chemical Society.
[61] Shimon Weiss,et al. Singlet oxygen production by Peptide-coated quantum dot-photosensitizer conjugates. , 2007, Journal of the American Chemical Society.
[62] Matthias Selke,et al. Singlet oxygen generation from water-soluble quantum dot-organic dye nanocomposites. , 2006, Journal of the American Chemical Society.
[63] E. Jang,et al. Interfused semiconductor nanocrystals: brilliant blue photoluminescence and electroluminescence. , 2005, Chemical communications.
[64] Jiayu Zhang,et al. Surface-Related Emission in Highly Luminescent CdSe Quantum Dots , 2003 .
[65] J. Ramirez,et al. A new look into the reaction between ergosterol and singlet oxygen in vitro , 2002, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.
[66] M. Bawendi,et al. (CdSe)ZnS Core-Shell Quantum Dots - Synthesis and Characterization of a Size Series of Highly Luminescent Nanocrystallites , 1997 .
[67] Y. Wada,et al. Extended X-ray Absorption Fine Structure Analysis of ZnS Nanocrystallites in N,N-Dimethylformamide. An Effect of Counteranions on the Microscopic Structure of a Solvated Surface , 1996 .
[68] C. Menck,et al. Singlet oxygen induced mutation spectrum in mammalian cells. , 1992, Nucleic acids research.
[69] P. Di Mascio,et al. Singlet oxygen induced single-strand breaks in plasmid pBR322 DNA: the enhancing effect of thiols. , 1991, Biochimica et biophysica acta.
[70] Kookheon Char,et al. Single-Step Synthesis of Quantum Dots with Chemical Composition Gradients , 2008 .
[71] M. Bawendi,et al. Emission Intensity Dependence and Single-Exponential Behavior In Single Colloidal Quantum Dot Fluorescence Lifetimes , 2004 .