Carbon nanotube structures and methods of manufacture and use

Archive for November, 2009

Carbon nanotube structures and methods of manufacture and use

Tuesday, November 24th, 2009

A method of making a carbon nanotube structure includes forming a plurality of carbon nanotubes and contacting the carbon nanotubes with a polymer. A solid composition is formed from the carbon nanotubes and polymer and then shaped. For example, the solid composition can be shaped into an elongated structure such ...

Methods of preparing a multi-shell nanocrystal structure, multi-shell nanocrystal structures and fabricated device including the same

Tuesday, November 24th, 2009

Methods of preparing a multi-shell nanocrystal structure, multi-shell nanocrystal structures thus obtained, and a fabricated device including the same are provided. A multi-shell nanocrystal structure may be formed by preparing a core nanocrystal and reacting the core nanocrystal with two or more precursors having different reaction rates to sequentially form ...

Method for producing nano-particles of metal oxide

Tuesday, November 24th, 2009

Method for producing nano-particles includes vaporizing a precursor material to produce a vapor, directing the vapor into an isolation chamber, combining a quench fluid in a gaseous state with a quench fluid in a liquid state to form a quench fluid stream, contacting the vapor contained in the isolation chamber ...

Ceramic nanostructures and methods of fabrication

Tuesday, November 24th, 2009

Structures and methods for the fabrication of ceramic nanostructures. Structures include metal particles, preferably comprising copper, disposed on a ceramic substrate. The structures are heated, preferably in the presence of microwaves, to a temperature that softens the metal particles and preferably forms a pool of molten ceramic under the softened ...

Near-field scanning optical microscope probe having a light emitting diode

Tuesday, November 24th, 2009

An improved near-field scanning optical microscope probe is disclosed. The near-field scanning optical microscope probe includes a probe body and two electrodes extending from the probe body to form a probe tip. In addition, a light-emitting diode is disposed between the two electrodes at the probe tip to act as ...

Multidimensional organization of heteromolecules by robust DNA motifs

Tuesday, November 24th, 2009

Two dimensional polynucleic acid arrays are assembled from robust nucleic acid motifs as polygonal units. The polygonal units in an array have edges composed of nucleic acid multi-crossover domains and are joined together by double cohesion of adjacent polygonal units. A subset of polygonal units in the array have a ...

Detection of presence of chemical precursors

Tuesday, November 24th, 2009

Methods and systems for determining if one or more target molecules are present in a gas, by exposing a functionalized carbon nanostructure (CNS) to the gas and measuring an electrical parameter value EPV(n) associated with each of N CNS sub-arrays. In a first embodiment, a most-probable concentration value C(opt) is ...

Fused nanocrystal thin film semiconductor and method

Tuesday, November 24th, 2009

A thin film semiconductor and a method of its fabrication use induced crystallization and aggregation of a nanocrystal seed layer to form a merged-domain layer. The nanocrystal seed layer is deposited onto a substrate surface within a defined boundary. A reaction temperature below a boiling point of a reaction solution ...

Functionally reconstituted viral membranes containing adjuvant

Tuesday, November 17th, 2009

Vaccines directed against antigens such as membrane proteins from pathogens or tumor cells are disclosed. Also described are methods of forming reconstituted viral membranes, with membrane fusion activity, which are lipid bilayer membranes preferably containing natural lipids of a virus, a viral fusion protein, one or more optional further antigens ...

Molecular single electron transistor (MSET) detector device

Tuesday, November 17th, 2009

A molecular single electron transistor (MSET) detector device ( 14 ) is described that comprises at least one organic molecule ( 87 ) connecting a drain electrode ( 84 ) and a source electrode ( 82 ). In use, said at least one organic molecule ( 87 ) provides a ...

Methods of interfacing nanomaterials for the monitoring and execution of pharmaceutical manufacturing processes

Methods of interfacing nanomaterials used to monitor and execute the pharmaceutical manufacturing process are disclosed herein. The nanomaterials are useful to provide a plurality of analysis to the manufacturing process. Consequently, the methods provide a means to perform validation and quality manufacturing on an integrated level whereby pharmaceutical manufacturers can achieve data and product integrity and ultimately minimize cost.

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Functional molecular device

A functional molecular device displaying its functions under the action of an electrical field is provided. A Louis base molecule, exhibiting positive dielectric constant anisotropy or exhibiting dipole moment along the long-axis direction of the Louis base molecule, is arrayed in the form of a pendant on an electrically conductive linear or film-shaped principal-axis molecule of a conjugated system, via a metal ion capable of acting as a Louis acid. The resulting structure is changed in conformation on application of an electrical field to exhibit its function. The electrically conductive linear or film-shaped principal-axis molecule and the Louis base molecule form a complex with the metal ion. On application of the electrical field, the Louis base molecule performs a swinging movement or a seesaw movement to switch the electrical conductivity of the principal-axis molecule. This molecule exhibits electrical characteristics which may be reversed depending on whether or not the molecule has been subjected to electrical field processing. A molecular device having a function equivalent to one of CMOS may be produced from one and the same material.

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Superlattice nano-device and method for making same

A nanodevice ( 1 ) for a desired function includes a substrate ( 11 ), a one-dimensional nanostructure ( 12 ), a functional layer ( 20 ) having a desired function, a conductive thin film electrode ( 30 ), and an insulating layer ( 40 ). The one-dimensional nanostructure is operatively extends from the substrate. The functional layer surrounds at least a portion of the one-dimensional nanostructure. The conducting thin film electrode surrounds/encompasses the functional layer. The insulating layer is positioned between the substrate and the conductive thin film electrode, thereby electrically insulating the one from the other. Further, the nanodevice can incorporate one or more functional units 50 , each unit including a one-dimensional nanostructure and a respective functional layer. The units may or may not share the same conductive thin film electrode and/or insulating layer.

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Superlattice nano-device and method for making same

A nanodevice ( 1 ) for a desired function includes a substrate ( 11 ), a one-dimensional nanostructure ( 12 ), a functional layer ( 20 ) having a desired function, a conductive thin film electrode ( 30 ), and an insulating layer ( 40 ). The one-dimensional nanostructure is operatively extends from the substrate. The functional layer surrounds at least a portion of the one-dimensional nanostructure. The conducting thin film electrode surrounds/encompasses the functional layer. The insulating layer is positioned between the substrate and the conductive thin film electrode, thereby electrically insulating the one from the other. Further, the nanodevice can incorporate one or more functional units 50 , each unit including a one-dimensional nanostructure and a respective functional layer. The units may or may not share the same conductive thin film electrode and/or insulating layer.

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Optical semiconductor device and method of manufacturing the same

Provided is an optical semiconductor device, which includes a GaAs substrate (or a semiconductor substrate) 20 ; an n-type contact layer (or a doping layer) 21 formed on one surface 20 a of the GaAs substrate 20 ; an active layer 25 formed on top of the n-type contact layer 21 and including at least one quantum dot 23 ; a p-type contact layer (or a contact layer) 26 formed on top of the active layer 25 and being of an opposite conduction type to the n-type contact layer 21 ; an insulating layer 29 formed on top of the p-type contact layer 26 and including a first opening 29 a whose size is such that a contact region CR of the p-type contact layer 26 lies within the first opening 29 a ; a p-side electrode layer 33 c formed on top of the contact region CR of the p-type contact layer 26 and on top of the insulating layer 29 and including a second opening 33 a lying within the first opening 29 a ; and a n-side electrode layer (or a second electrode layer) 37 formed on the other surface 20 b of the GaAs substrate 20.

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