Patent application number | Description | Published |
20080241051 | METHODS OF PROCESSING NANOCRYSTALS, AND COMPOSITIONS, DEVICES AND SYSTEMS INCLUDING SAME - Methods of processing nanocrystals to remove excess free and bound organic material and particularly surfactants used during the synthesis process, and resulting nanocrystal compositions, devices and systems that are physically, electrically and chemically integratable into an end application. | 10-02-2008 |
20080308130 | Methods of Processing Nanocrystals, and Compositions, Devices and Systems Including Same - Methods of processing nanocrystals to remove excess free and bound organic material and particularly surfactants used during the synthesis process, and resulting nanocrystal compositions, devices and systems that are physically, electrically and chemically integratable into an end application. | 12-18-2008 |
20090010608 | Nanocomposites - This invention provides composite materials comprising nanostructures (e.g., nanowires, branched nanowires, nanotetrapods, nanocrystals, and nanoparticles). Methods and compositions for making such nanocomposites are also provided, as are articles comprising such composites. Waveguides and light concentrators comprising nanostructures (not necessarily as part of a nanocomposite) are additional features of the invention. | 01-08-2009 |
20090075468 | System and Process for Producing Nanowire Composites and Electronic Substrates Therefrom - The present invention relates to a system and process for producing a nanowire-material composite. A substrate having nanowires attached to a portion of at least one surface is provided. A material is deposited over the portion to form the nanowire-material composite. The process further optionally includes separating the nanowire-material composite from the substrate to form a freestanding nanowire-material composite. The freestanding nanowire material composite is optionally further processed into a electronic substrate. A variety of electronic substrates can be produced using the methods described herein. For example, a multi-color light-emitting diode can be produced from multiple, stacked layers of nanowire-material composites, each composite layer emitting light at a different wavelength. | 03-19-2009 |
20090317044 | Nanocomposites - This invention provides composite materials comprising nanostructures (e.g., nanowires, branched nanowires, nanotetrapods, nanocrystals, and nanoparticles). Methods and compositions for making such nanocomposites are also provided, as are articles comprising such composites. Waveguides and light concentrators comprising nanostructures (not necessarily as part of a nanocomposite) are additional features of the invention. | 12-24-2009 |
20100323500 | System and Process for Producing Nanowire Composites and Electronic Substrates Therefrom - The present invention relates to a system and process for producing a nanowire-material composite. A substrate having nanowires attached to a portion of at least one surface is provided. A material is deposited over the portion to form the nanowire-material composite. The process further optionally includes separating the nanowire-material composite from the substrate to form a freestanding nanowire-material composite. The freestanding nanowire material composite is optionally further processed into a electronic substrate. A variety of electronic substrates can be produced using the methods described herein. For example, a multi-color light-emitting diode can be produced from multiple, stacked layers of nanowire-material composites, each composite layer emitting light at a different wavelength. | 12-23-2010 |
20120148501 | RADIOLOGICAL IMAGE ENHANCEMENT WITH TANTALUM CLUSTERS - A solution comprising a defined concentration of purified tantalum clusters in a solvent selected from the group consisting of water, ethanol, ethylene glycol and propylene glycol; wherein said defined concentration is greater than 100 mM, preferably greater than 150 mM; most preferably greater than 300 mM. The purified tantalum clusters are obtained by sequentially washing crude tantalum clusters containing residual chloride ions with aqueous hydrochloric acid to remove residual sodium chloride; and washing the hydrochloric acid-washed tantalum clusters with diethyl ether to remove residual hydrochloric acid and water. | 06-14-2012 |
Patent application number | Description | Published |
20090050854 | Organic Species that Facilitate Charge Transfer to or from Nanostructures - The present invention provides compositions (small molecules, oligomers and polymers) that can be used to modify charge transport across a nanocrystal surface or within a nanocrystal-containing matrix, as well as methods for making and using the novel compositions. | 02-26-2009 |
20100065783 | Organic species that facilitate charge transfer to or from nanostructures - The present invention provides polymeric compositions that can be used to modify charge transport across a nanocrystal surface or within a nanocrystal-containing matrix, as well as methods for making and using the novel compositions. | 03-18-2010 |
20100139770 | NANOSTRUCTURE AND NANOCOMPOSITE BASED COMPOSITIONS AND PHOTOVOLTAIC DEVICES - Nanocomposite photovoltaic devices are provided that generally include semiconductor nanocrystals as at least a portion of a photoactive layer. Photovoltaic devices and other layered devices that comprise core-shell nanostructures and/or two populations of nanostructures, where the nanostructures are not necessarily part of a nanocomposite, are also features of the invention. Varied architectures for such devices are also provided including flexible and rigid architectures, planar and non-planar architectures and the like, as are systems incorporating such devices, and methods and systems for fabricating such devices. Compositions comprising two populations of nanostructures of different materials are also a feature of the invention. | 06-10-2010 |
20140017396 | COMPOSITIONS AND METHODS FOR MODULATION OF NANOSTRUCTURE ENERGY LEVELS - Ligand compositions for use in preparing discrete coated nanostructures are provided, as well as the coated nanostructures themselves and devices incorporating same. Methods for post-deposition shell formation on a nanostructure, for reversibly modifying nanostructures, and for manipulating the electronic properties of nanostructures are also provided. The ligands and coated nanostructures of the present invention are particularly useful for close packed nanostructure compositions, which can have improved quantum confinement and/or reduced cross-talk between nanostructures. Ligands of the present invention are also useful for manipulating the electronic properties of nanostructure compositions (e.g., by modulating energy levels, creating internal bias fields, reducing charge transfer or leakage, etc.). | 01-16-2014 |