Having Different Types Of Nanoscale Structures Or Devices On A Common Substrate Patents (Class 977/707)
  • Patent number: 8974889
    Abstract: Disclosed herein is a nanostructured thin film. The nanostructured thin film comprises a nanoparticle layer and a number of micro-undulated surfaces formed on the nanoparticle layer. The two micro-undulated structures of the nanostructured thin film are uniformly introduced over a large area. This configuration makes it easy to control the surface properties of the nanostructured thin film. Therefore, the nanostructured thin film can be widely applied to a variety of devices. Also disclosed herein is a method for controlling the surface properties of the nanostructured thin film.
    Type: Grant
    Filed: September 25, 2008
    Date of Patent: March 10, 2015
    Assignee: Samsung Electronics Co., Ltd.
    Inventors: Xavier Bulliard, Anass Benayad, Jong Jin Park, Jae Cheol Lee, Yun Hyuk Choi
  • Patent number: 8847589
    Abstract: A magnetic field sensor including a body including a magnetic mechanism capable of forming a torque applied on the body by action of an external magnetic field to be detected; a connector, separated from the body, mechanically connecting the body to an inlay portion of the sensor by at least one pivot link having an axis perpendicular to the direction of the magnetic field to be detected; a detector detecting stress applied by the body by action of the torque, separated from the connector and including at least one suspended stress gauge including a first part mechanically connected to the inlay portion, a second part mechanically connected to the body, and a third part provided between the first and second parts and suspended between the inlay portion and the body.
    Type: Grant
    Filed: January 22, 2010
    Date of Patent: September 30, 2014
    Assignee: Commissariat à l'énergie atomique et aux énergies alternatives
    Inventors: Arnaud Walther, Philippe Robert, Olivier Redon
  • Patent number: 8797662
    Abstract: Photonic nanostructures, light absorbing apparatuses, and devices are provided. The photonic nanostructures include a plurality of photonic nanobars configured to collectively absorb light over an excitation wavelength range. At least two of the photonic nanobars of the plurality have lengths that are different from one another. Each photonic nanobar of the plurality has a substantially small width and a substantially small height relative to the different lengths. A method for forming such may comprise forming a plurality of first photonic nanobars comprising a width and a height that are smaller than a length of the plurality of first photonic nanobars, and forming a plurality of second photonic nanobars comprising a width and a height that are smaller than a length of the second photonic nanobar, wherein the lengths of the plurality of first photonic nanobars and the lengths of the plurality of second photonic nanobars are different from one another.
    Type: Grant
    Filed: December 14, 2010
    Date of Patent: August 5, 2014
    Assignee: Micron Technology, Inc.
    Inventors: Yongjun Jeff Hu, Allen McTeer, Lijing Gou
  • Patent number: 8703073
    Abstract: A lithographically structured device has an actuation layer and a control layer operatively connected to the actuation layer. The actuation layer includes a stress layer and a neutral layer that is constructed of materials and with a structure such that it stores torsional energy upon being constructed. The control layer is constructed to maintain the actuation layer substantially in a first configuration in a local environmental condition and is responsive to a change in the local environmental condition such that it permits a release of stored torsional energy to cause a change in a structural configuration of the lithographically structured device to a second configuration, the control layer thereby providing a trigger mechanism. The lithographically structured device has a maximum dimension that is less than about 10 mm when it is in the second configuration.
    Type: Grant
    Filed: March 6, 2009
    Date of Patent: April 22, 2014
    Assignee: The Johns Hopkins University
    Inventors: David Hugo Gracias, Timothy Gar-Ming Leong
  • Patent number: 8557097
    Abstract: A technique for embedding a nanotube in a nanopore is provided. A membrane separates a reservoir into a first reservoir part and a second reservoir part, and the nanopore is formed through the membrane for connecting the first and second reservoir parts. An ionic fluid fills the nanopore, the first reservoir part, and the second reservoir part. A first electrode is dipped in the first reservoir part, and a second electrode is dipped in the second reservoir part. Driving the nanotube into the nanopore causes an inner surface of the nanopore to form a covalent bond to an outer surface of the nanotube via an organic coating so that the inner surface of the nanotube will be the new nanopore with a super smooth surface for studying bio-molecules while they translocate through the nanotube.
    Type: Grant
    Filed: September 9, 2011
    Date of Patent: October 15, 2013
    Assignee: International Business Machines Corporation
    Inventors: Ali Afzali-Ardakani, Binquan Luan, Hongbo Peng
  • Patent number: 8506783
    Abstract: A three-dimensional nanochannel device and a method of manufacturing the same are provided. In the device, a first substrate, a second substrate, and a channel layer sandwiched by the first and the second substrates are included. At least one channel is constituted by the first and the second substrates and the channel layer and includes a fluid inlet, a fluid outlet, and at least one condensed channel between the fluid inlet and the fluid outlet. The condensed channel at least has a first size and a second size on an X-Y plane and has a third size and a fourth size on an X-Z plane. A difference between the first size and the second size is about at least two orders in scale, and a difference between the third size and the fourth size is about at least two orders in scale.
    Type: Grant
    Filed: August 9, 2011
    Date of Patent: August 13, 2013
    Assignee: Industrial Technology Research Institute
    Inventors: Liang-Ju Chien, Chi-Han Chiou
  • Patent number: 8501923
    Abstract: The disclosure relates to methods and composition for generating nanoscale devices, systems, and enzyme factories based upon a nucleic acid nanostructure the can be designed to have a predetermined structure.
    Type: Grant
    Filed: November 18, 2010
    Date of Patent: August 6, 2013
    Assignee: California Institute of Technology
    Inventor: Paul W. K. Rothemund
  • Patent number: 8491769
    Abstract: A technique for embedding a nanotube in a nanopore is provided. A membrane separates a reservoir into a first reservoir part and a second reservoir part, and the nanopore is formed through the membrane for connecting the first and second reservoir parts. An ionic fluid fills the nanopore, the first reservoir part, and the second reservoir part. A first electrode is dipped in the first reservoir part, and a second electrode is dipped in the second reservoir part. Driving the nanotube into the nanopore causes an inner surface of the nanopore to form a covalent bond to an outer surface of the nanotube via an organic coating so that the inner surface of the nanotube will be the new nanopore with a super smooth surface for studying bio-molecules while they translocate through the nanotube.
    Type: Grant
    Filed: September 12, 2012
    Date of Patent: July 23, 2013
    Assignee: International Business Machines Corporation
    Inventors: Ali Afzali-Ardakani, Binquan Luan, Hongbo Peng
  • Patent number: 8450833
    Abstract: A semiconductor device is formed with sub-resolution features and at least one additional feature having a relatively larger critical dimension using only two masks. An embodiment includes forming a plurality of first mandrels, having a first width, and at least one second mandrel, having a second width greater than the first width, overlying a target layer using a first mask, forming sidewall spacers along the length and width of the first and second mandrels, forming a filler adjacent each sidewall spacer, the filler having the first width, removing the filler adjacent sidewall spacers along the widths of the first and second mandrels using a second mask, removing the sidewall spacers, and etching the target layer between the filler and the first and second mandrels, thereby forming at least two target features with different critical dimensions.
    Type: Grant
    Filed: August 20, 2010
    Date of Patent: May 28, 2013
    Assignee: GlobalFoundries Inc.
    Inventor: Ryoung-han Kim
  • Patent number: 8405063
    Abstract: A component including a substrate, at least one layer including a color conversion material including quantum dots disposed over the substrate, and a layer including a conductive material (e.g., indium-tin-oxide) disposed over the at least one layer. (Embodiments of such component are also referred to herein as a QD light-enhancement substrate (QD-LES).) In certain preferred embodiments, the substrate is transparent to light, for example, visible light, ultraviolet light, and/or infrared radiation. In certain embodiments, the substrate is flexible. In certain embodiments, the substrate includes an outcoupling element (e.g., a microlens array). A film including a color conversion material including quantum dots and a conductive material is also provided. In certain embodiments, a component includes a film described herein. Lighting devices are also provided. In certain embodiments, a lighting device includes a film described herein.
    Type: Grant
    Filed: January 20, 2010
    Date of Patent: March 26, 2013
    Assignee: QD Vision, Inc.
    Inventors: Peter T. Kazlas, Seth Coe-Sullivan
  • Patent number: 8400237
    Abstract: A circuit device includes a substrate 11, and a transmission line 10. The transmission line 10 includes a dielectric film 13 formed on the substrate 11, and a signal line formed on the dielectric film 13. The dielectric film 13 includes a nano-composite film in which particles of a first material are dispersed in a second material.
    Type: Grant
    Filed: July 29, 2008
    Date of Patent: March 19, 2013
    Assignee: Panasonic Corporation
    Inventors: Hiroaki Ueno, Hiroyuki Sakai, Tsuyoshi Tanaka, Daisuke Ueda
  • Patent number: 8323488
    Abstract: Embodiments in accordance with the present invention relate to packed-column nano-liquid chromatography (nano-LC) systems integrated on-chip, and methods for producing and using same. The microfabricated chip includes a column, flits/filters, an injector, and a detector, fabricated in a process compatible with those conventionally utilized to form integrated circuits. The column can be packed with supports for various different stationary phases to allow performance of different forms of nano-LC, including but not limited to reversed-phase, normal-phase, adsorption, size-exclusion, affinity, and ion chromatography. A cross-channel injector injects a nanolitre/picolitre-volume sample plug at the column inlet. An electrochemical/conductivity sensor integrated at the column outlet measures separation signals.
    Type: Grant
    Filed: February 28, 2011
    Date of Patent: December 4, 2012
    Assignees: California Institute of Technology, City of Hope
    Inventors: Yu-Chong Tai, Qing He, Jun Xie, Changlin Pang, Terry D. Lee, Damien Rodger, Matthieu Liger
  • Patent number: 8303883
    Abstract: The invention provides foams of desired cell sizes formed from metal or ceramic materials that coat the surfaces of carbon foams which are subsequently removed. For example, metal is located over a sol-gel foam monolith. The metal is melted to produce a metal/sol-gel composition. The sol-gel foam monolith is removed, leaving a metal foam.
    Type: Grant
    Filed: June 30, 2006
    Date of Patent: November 6, 2012
    Assignee: Lawrence Livermore National Security, LLC.
    Inventors: Richard L. Landingham, Joe H. Satcher, Jr., Paul R. Coronado, Theodore F. Baumann
  • Publication number: 20120267223
    Abstract: A non-volatile bistable nano-electromechanical switch is provided for use in memory devices and microprocessors. The switch employs carbon nanotubes as the actuation element. A method has been developed for fabricating nanoswitches having one single-walled carbon nanotube as the actuator. The actuation of two different states can be achieved using the same low voltage for each state.
    Type: Application
    Filed: June 27, 2012
    Publication date: October 25, 2012
    Applicant: NORTHEASTERN UNIVERSITY
    Inventors: Sivasubramanian Somu, Ahmed Busnaina, Nicol McGruer, Peter Ryan, George G. Adams, Xugang Xiong, Taehoon Kim
  • Patent number: 8202496
    Abstract: A molecule is separated from a liquid sample containing said molecule and at least one additional molecule having a larger hydrodynamic diameter than the hydrodynamic diameter of the molecule to be separated, by means of a separation device comprising a substrate, at least one circulation channel arranged in said substrate, and at least one nanotube associated with said molecule to be separated and formed on a free surface of the substrate. Separation is achieved by means of the internal channel of a nanotube, such as a carbon nanotube, presenting an effective diameter chosen in predetermined and controlled manner. The effective diameter of the internal channel is chosen such as to be larger than the hydrodynamic diameter of the molecule to be separated and smaller than the hydrodynamic diameter of the additional molecules of larger hydrodynamic diameters.
    Type: Grant
    Filed: February 23, 2009
    Date of Patent: June 19, 2012
    Assignee: Commissariat a l'Energie Atomique
    Inventors: Jean-Christophe Coiffic, Frédéric-Xavier Gaillard, Pierre Puget
  • Patent number: 8173525
    Abstract: Systems and methods of nanomaterial transfer are described. A method of nanomaterial transfer involving fabricating a template and synthesizing nanomaterials on the template. Subsequently, the nanomaterials are transferred to a substrate by pressing the template onto the substrate. In some embodiments, the step of transferring the nanomaterials involves pressing the template onto the substrate such that the nanomaterials are embedded below a surface layer of the substrate. In some embodiments, the temperature of the plurality of nanomaterials is raised to assist the transfer of the nanomaterials to the substrate.
    Type: Grant
    Filed: June 16, 2006
    Date of Patent: May 8, 2012
    Assignee: Georgia Tech Research Corporation
    Inventors: Samuel Graham, Jr., William P. King, Ching-ping Wong
  • Publication number: 20120070713
    Abstract: In accordance with at least selected embodiments or aspects, the present invention is directed to improved, unique, and/or high performance ISS lead acid battery separators, such as improved ISS flooded lead acid battery separators, ISS batteries including such separators, methods of production, and/or methods of use. The preferred ISS separator may include negative cross ribs and/or PIMS minerals. In accordance with more particular embodiments or examples, a PIMS mineral (preferably fish meal, a bio-mineral) is provided as at least a partial substitution for the silica filler component in a silica filled lead acid battery separator (preferably a polyethylene/silica separator formulation). In accordance with at least selected embodiments, the present invention is directed to new or improved batteries, separators, components, and/or compositions having heavy metal removal capabilities and/or methods of manufacture and/or methods of use thereof.
    Type: Application
    Filed: September 22, 2011
    Publication date: March 22, 2012
    Inventors: J. Kevin Whear, John R. Timmons, Jeffrey K. Chambers, Tejas R. Shah
  • Patent number: 8133465
    Abstract: A polymer-carbon nanotube composite film is provided for use as a sensor for detecting chemical vapors. The composite film is formed by coating perpendicularly-aligned carbon nanotubes with a polymer selected from poly(vinyl acetate), poly(isoprene), or blends thereof. The sensor may be formed by attaching at least two electrodes to the polymer-carbon nanotube composite film. The sensor may be used in any applications where the sensor is capable of detecting a change in conductivity in the composite.
    Type: Grant
    Filed: September 11, 2006
    Date of Patent: March 13, 2012
    Assignee: University of Dayton
    Inventors: Liming Dai, Wei Chen
  • Patent number: 8094378
    Abstract: A design method, apparatus, and fabrication method for structures for controlling the flow of electromagnetic energy at a sub-wavelength scale is disclosed. Transformational optics principles are used as a starting point for the design of structures that operate as, for example, hyperlenses or concentrators such that evanescent waves at a first surface are radiated in the far field at a second surface. Plane waves incident at a first surface may be focused to a spot size substantially smaller than a wavelength, so as to interact with objects at the focal point, or be re-radiated.
    Type: Grant
    Filed: October 23, 2009
    Date of Patent: January 10, 2012
    Assignee: Purdue Research Foundation
    Inventors: Alexander V. Kildishev, Vladimir M. Shalaev
  • Patent number: 8076260
    Abstract: After a titanium nitride (TiN) thin film is formed on a silicon substrate, cobalt (Co) fine particles and nickel (Ni) fine particles are deposited in a mixed state on the titanium nitride (TiN) thin film, and CNTs are sequentially grown from the cobalt (Co) fine particles and the nickel fine particles by varying growth conditions.
    Type: Grant
    Filed: April 7, 2008
    Date of Patent: December 13, 2011
    Assignee: Fujitsu Semiconductor Limited
    Inventor: Daiyu Kondo
  • Publication number: 20110291069
    Abstract: Light-emitting devices (LED) and methods of manufacturing the same.
    Type: Application
    Filed: November 17, 2010
    Publication date: December 1, 2011
    Applicant: Samsung Electronics Co., Ltd.
    Inventor: Taek Kim
  • Patent number: 8003965
    Abstract: Planar sub-wavelength structures provide superlensing, i.e., electromagnetic focusing beyond the diffraction limit. The planar structures use diffraction to force the input field to converge to a spot on the focal plane. The sub-wavelength patterned structures manipulate the output wave in such a manner as to form a sub-wavelength focus in the near field. In some examples, the sub-wavelength structures may be linear grating-like structures that can focus electromagnetic radiation to lines of arbitrarily small sub-wavelength dimension, or two dimensional grating-like structures and Bessel (azimuthally symmetric) structures that can focus to spots of arbitrarily small sub-wavelength dimensions. The particular pattern for the sub-wavelength structures may be derived from the desired focus. Some examples describe sub-wavelength structures that have been implemented to focus microwave radiation to sub-wavelength dimensions in the near field.
    Type: Grant
    Filed: May 19, 2008
    Date of Patent: August 23, 2011
    Assignee: The Regents of the University of Michigan
    Inventors: Anthony Grbic, Roberto D. Merlin
  • Patent number: 7982296
    Abstract: The invention provides methods and devices for fabricating printable semiconductor elements and assembling printable semiconductor elements onto substrate surfaces. Methods, devices and device components of the present invention are capable of generating a wide range of flexible electronic and optoelectronic devices and arrays of devices on substrates comprising polymeric materials. The present invention also provides stretchable semiconductor structures and stretchable electronic devices capable of good performance in stretched configurations.
    Type: Grant
    Filed: September 22, 2009
    Date of Patent: July 19, 2011
    Assignee: The Board of Trustees of the University of Illinois
    Inventors: Ralph G. Nuzzo, John A. Rogers, Etienne Menard, Keon Jae Lee, Dahl-Young Khang, Yugang Sun, Matthew Meitl, Zhengtao Zhu
  • Patent number: 7906316
    Abstract: A molecular sensor includes a membrane layer having parallel pores extending through the membrane layer and incorporating therein probe molecules that bind with corresponding target molecules when present in the pores, electrodes, and an ionic solution in contact with the electrodes and the pores, wherein the electrodes are energized to induce an electrical current in the solution through the pores, wherein the electrical current induces an electrical parameter in the electrodes that is indicative of a through-pore electrical impedance of the pores, wherein the through-pore electrical impedance is increased when there is probe-to-target molecule binding in the pores relative to when there is an absence of such binding.
    Type: Grant
    Filed: July 7, 2008
    Date of Patent: March 15, 2011
    Assignee: The Johns Hopkins University
    Inventor: Stergios Papadakis
  • Patent number: 7879818
    Abstract: Methods are disclosed for preparing novel biodegradable cross-linked nanoparticles based on covalently cross-linking modifications of hyaluronic acid. The final products of the present invention are stable in aqueous media, and may be used as detergents and as additives for pharmaceutical compositions for drug delivery, DNA carrier system and other applications. The nanoparticles made from the biopolymers of the present invention may also be used in controlled release applications, super-absorbent materials as well as biomaterials like enzyme immobilization.
    Type: Grant
    Filed: December 22, 2006
    Date of Patent: February 1, 2011
    Inventors: Janos Borbely, Tunde Rente, Magdolna Bodnar, Ildiko Schriffertne Denyicska
  • Patent number: 7868426
    Abstract: A monolithic pair of nanoscale probes, including: a substrate having a cavity that extends from a surface of the substrate into its body; a dielectric layer formed on the substrate; a pair of nanoscale probe precursors formed over the dielectric layer; a plurality of sub-monolayers of electrode material selectively atomic layer deposited over the pair of nanoscale probe precursors. The dielectric layer includes a window that extends through it to the cavity of the substrate such that a portion of the dielectric layer adjacent to the window extends over the cavity. The pair of nanoscale probe precursors includes a pair of edges facing each other across the window. These edges correspond to tips of the pair of nanoscale probes. The sub-monolayers of electrode material include the pair of edges, so that a distance between the tips of the nanoscale probes is between about 0.1 nm and about 20 nm.
    Type: Grant
    Filed: July 28, 2008
    Date of Patent: January 11, 2011
    Assignee: University of Delaware
    Inventors: Brian G. Willis, Rahul Gupta
  • Patent number: 7842793
    Abstract: The disclosure relates to methods and composition for generating nanoscale devices, systems, and enzyme factories based upon a nucleic acid nanostructure the can be designed to have a predetermined structure.
    Type: Grant
    Filed: June 14, 2006
    Date of Patent: November 30, 2010
    Assignee: The California Institute of Technology
    Inventor: Paul W. K. Rothemund
  • Patent number: 7837663
    Abstract: The present invention relates to a visual indicating device and an article for controlling odors, in particular foot, garbage, basement, cooking, pet, tobacco, feces and urine odors. The article comprises a visual indicating agent that is color sensitive to the odor, and optionally, an odor absorbing agent. The visual indicating agent changes color when the article has been exposed to a sufficient amount of odor to saturate the article. The indicating agent may be applied in differing concentrations to two or more zones so as to indicate to a user of the article how much of the odor absorbing capacity has been used, or conversely, how much of the odor absorbing capacity remains. Suitable visual indicating agents that change color in response to odors are also described. The article for controlling odors may be a disposable odor absorbing sheet, air freshening product, diaper, undergarment pad, face mask, air filtration device, sanitary napkin, tampon, panty shield or incontinence pad.
    Type: Grant
    Filed: October 16, 2003
    Date of Patent: November 23, 2010
    Assignee: Kimberly-Clark Worldwide, Inc.
    Inventors: John Gavin MacDonald, RameshBabu Boga, Jaeho Kim, Bao Trong Do, Irene Kuznetsov
  • Patent number: 7824617
    Abstract: The present invention relates to the realization of particular supramolecular assemblies of dyes, in particular cyanines, called J aggregates. The invention concerns an assembly made up of a support including a mesoporous layer whereof the pores have an average BET diameter greater than 1.5 nm, macromolecules with dendritic architecture functionalizing said layer, at least in its pores, a layer of molecules from the family of cyanines interacting with the macromolecules with dendritic architecture and organized into J aggregates.
    Type: Grant
    Filed: August 25, 2008
    Date of Patent: November 2, 2010
    Assignee: CSEM Centre Suisse d'Electronique et de Microtechnique SA-Recherche et Development
    Inventors: Rolf Steiger, Raphaël Pugin
  • Patent number: 7776425
    Abstract: A non-vacuum-based, non-collodial chemistry-based method of synthesizing metal nanoparticles and nanoparticle-nanostructured material composites obtained by that method. An embodiment of the method of this invention for fabricating a nanoparticle-nanostructured material composite and synthesizing nanoparticles includes preparing a nanostructured/nanotextured material, and, contacting the nanostructured/nanotextured material with a solution. Nanoparticles are synthesized on the nanostructured/nanotextured material as a result of the contact. The method of the present invention can be utilized to fabricate SPR and SERS substrates for sensing and detection. Additional systems based on this approach (e.g., surface plasmon resonance absorption and alloying sensors and nanocatalysts) are described.
    Type: Grant
    Filed: January 21, 2004
    Date of Patent: August 17, 2010
    Assignee: The Penn State Research Foundation
    Inventors: Ali Kaan Kalkan, Stephen J. Fonash
  • Patent number: 7768650
    Abstract: The present invention provides a biochip for testing biological substances comprising a plurality of binding sites, optical means for determining a specific binding event at each binding site, wherein the plurality of binding sites and the means for determining a specific binding event at each binding site are monolithically integrated into a single chip which is electrically powered and produces electrical signals in response to binding events at each binding site. The means for determining a specific binding event can include a micro-cavity light source formed in a semiconductor layer and a photodetector formed in the same semiconductor layer and further include a grating assisted vertical planar waveguide coupler for in-situ monitoring hybridization dynamics at each binding site via associated changes in refractive index.
    Type: Grant
    Filed: April 20, 2005
    Date of Patent: August 3, 2010
    Inventor: Michael Bazylenko
  • Patent number: 7695646
    Abstract: A composite material and related methods are described, the composite material configured to exhibit at least one of a negative effective permittivity and a negative effective permeability for incident radiation of at least one wavelength. The composite material comprises an arrangement of electromagnetically reactive cells of small dimension relative to the wavelength, each cell having a plurality of quantum dots associated therewith for enhancing a resonant response thereof to the incident radiation at the wavelength.
    Type: Grant
    Filed: November 23, 2005
    Date of Patent: April 13, 2010
    Assignee: Hewlett-Packard Development Company, L.P.
    Inventors: Shih-Yuan Wang, Alexandre Bratkovski
  • Patent number: 7682816
    Abstract: This invention relates to microwell array compositions which are coated with one or more thin film coatings. The invention includes the process of fabricating and using thin film coated microwell arrays.
    Type: Grant
    Filed: August 30, 2005
    Date of Patent: March 23, 2010
    Assignee: 454 Life Sciences Corporation
    Inventors: Jong-Bum Kim, Steven Martin Lefkowitz, John Nobile, George Thomas Roth, Pengguang Yu
  • Patent number: 7622567
    Abstract: 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 nanoparticle or pendant molecule attached to an end of one edge of each polygonal unit within this subset.
    Type: Grant
    Filed: January 23, 2007
    Date of Patent: November 24, 2009
    Assignee: New York University
    Inventors: Nadrian C. Seeman, Jiwen Zheng, Pamela E. Constantinou
  • Patent number: 7611906
    Abstract: Carbon nanotubes are grown on a first substrate. The CNTs grown on the first substrate are immersed in a biological solution at a predetermined depth to functionalize ends of the CNTs with a biological molecule. The functionalized CNTs are harvested from the first substrate. A second substrate is functionalized with a complementary biological modification, which is a complementary binding partner to the biological molecule functionalized to the ends of the CNTs. The functionalized CNTs are attached to the second substrate by way of the complementary binding partner.
    Type: Grant
    Filed: January 22, 2007
    Date of Patent: November 3, 2009
    Assignee: Applied Nanotech Holdings, Inc.
    Inventor: Zvi Yaniv
  • Patent number: 7553681
    Abstract: An embodiment of the present invention is a technique to form stress sensors on a package in situ. A first array of carbon nanotubes (CNTs) aligned in a first orientation is deposited at a first location on a substrate or a die in a wafer. The first array is intercalated with polymer. The first polymer-intercalated array is covered with a protective layer. A second array of CNTs aligned in a second orientation is deposited at a second location on the substrate or the die. The second array is intercalated with polymer.
    Type: Grant
    Filed: March 24, 2006
    Date of Patent: June 30, 2009
    Assignee: Intel Corporation
    Inventors: Nachiket R. Raravikar, Neha M. Patel
  • Patent number: 7538337
    Abstract: Semiconductor devices may be fabricated using nanowires. In an example embodiment, a conductive gate may be used to control conduction along the nanowires, in which case one of the contacts is a drain and the other a source. The nanowires may be grown in a trench or through-hole in a substrate or in particular in an epitaxial layer on substrate. In another example embodiment, the gate may be provided only at one end of the nanowires. The nanowires can be of the same material along their length; alternatively different materials can be used, especially different materials adjacent to the gate and between the gate and the base of the trench.
    Type: Grant
    Filed: June 7, 2005
    Date of Patent: May 26, 2009
    Assignee: NXP B.V.
    Inventors: Erwin A. Hijzen, Erik P. A. M. Bakkers, Raymond J. E. Hueting, Abraham R. Balkenende
  • Patent number: 7479590
    Abstract: Disclosed herein is a printed circuit board comprising a laminate that comprises a copper foil; inorganic or metallic nanoparticles having an average diameter of less than 100 nanometers disposed on a surface of the copper foil; the nanoparticles being arranged in domains; the domains having average domain sizes of about 10 to about 100 nanometers and average interdomain spacings of 10 to about 1,000 nanometers; the nanoparticles not facilitating the transfer of an electrical current; a layer of solid organic polymer disposed on the nanoparticles; the layer of the organic polymer being bounded to the nanoparticles by van der Waals forces; the laminate being employed in a printed circuit board.
    Type: Grant
    Filed: January 3, 2008
    Date of Patent: January 20, 2009
    Assignee: International Business Machines Corporation
    Inventor: Joseph Kuczynski
  • Patent number: 7476787
    Abstract: Systems and methods for addressable field enhancement microscopy are provided. In an embodiment, a nanoscale array of islands may be illuminated with an electromagnetic signal and addressed to differentiate signals from different islands of the nanoscale array. The differentiated signals originating from illuminating the nanoscale array may be applied to microscopy of a specimen.
    Type: Grant
    Filed: February 23, 2006
    Date of Patent: January 13, 2009
    Assignee: STC.UNM
    Inventors: James L. Thomas, Wolfgang G. Rudolph
  • Patent number: 7329567
    Abstract: Vertical field effect transistors having a channel region defined by at least one semiconducting nanotube and methods for fabricating such vertical field effect transistors by chemical vapor deposition using a spacer-defined channel. Each nanotube is grown by chemical vapor deposition catalyzed by a catalyst pad positioned at the base of a high-aspect-ratio passage defined between a spacer and a gate electrode. Each nanotube grows in the passage with a vertical orientation constrained by the confining presence of the spacer. A gap may be provided in the base of the spacer remote from the mouth of the passage. Reactants flowing through the gap to the catalyst pad participate in nanotube growth.
    Type: Grant
    Filed: July 13, 2005
    Date of Patent: February 12, 2008
    Assignee: International Business Machines Corporation
    Inventors: Toshiharu Furukawa, Mark Charles Hakey, Steven John Holmes, David Vaclav Horak, Peter H. Mitchell, Larry Alan Nesbit
  • Patent number: 7258745
    Abstract: The present invention comprises a method for fabricating hafnia film comprising the steps of providing a substrate having a surface that allows formation of a self-assembled monolayer thereon via covalent bonding; providing an aqueous solution that provides homogeneous hafnium ionic complexes and hafnium nanoclusters wherein the aqueous solution is capable of undergoing homogeneous precipitation under controlled conditions for a desired period of time at a controlled temperature and controlled solution acidity for desired nanocluster nucleation and growth kinetics, desired nanocluster size, desired growth rate of film thickness and desired film surface characteristics.
    Type: Grant
    Filed: August 6, 2004
    Date of Patent: August 21, 2007
    Assignee: UT-Battelle, LLC
    Inventor: Michael Z. Hu
  • Patent number: 7226840
    Abstract: A process for forming an electronic device can include forming a first set of discontinuous storage elements over a primary surface of a substrate and forming a trench within the substrate. The process can also include forming a second set of discontinuous storage elements within the trench. The process can further include forming a first gate electrode within the trench, wherein a discontinuous storage element lies between the first gate electrode and a wall of the trench. The process can still further include removing a part of the second set of discontinuous storage elements and forming a second gate electrode over the first gate electrode. After forming the second gate electrode, substantially none of the second set of discontinuous storage elements lies along the wall of the trench at an elevation between an upper surface of the first gate electrode and the primary surface of the substrate.
    Type: Grant
    Filed: July 25, 2005
    Date of Patent: June 5, 2007
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Gowrishankar L. Chindalore, Cheong M. Hong, Craig T. Swift
  • Patent number: 7211487
    Abstract: A process for forming an electronic device can include forming a first trench within a substrate, wherein the trench includes a wall and a bottom and extends from a primary surface of the substrate. The process can also include forming discontinuous storage elements and forming a first gate electrode within the trench such that, a first discontinuous storage element of the discontinuous storage elements lies between the first gate electrode and the wall of the trench. The process can further include removing the discontinuous storage elements that overlie the primary surface of the substrate. The process can still further include forming a second gate electrode that overlies the first gate electrode and the primary surface of the substrate.
    Type: Grant
    Filed: July 25, 2005
    Date of Patent: May 1, 2007
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Gowrishankar L. Chindalore, Paul A. Ingersoll, Criag T. Swift
  • Patent number: 7205608
    Abstract: An electronic device can include a substrate having a trench that includes a wall and a bottom. The electronic device can also include a first set of discontinuous storage elements that overlie a primary surface of the substrate and a second set of discontinuous storage elements that lie within the trench. The electronic device can also include a first gate electrode, wherein substantially none of the discontinuous storage elements lies along the wall of the trench at an elevation between and upper surface of the first gate electrode and the primary surface of the substrate. The electronic device can also include a second gate electrode overlying the first gate electrode and the primary surface. In another embodiment, a conductive line can be electrically connected to one or more rows or columns of memory cells, and another conductive line can be more rows or more columns of memory cells.
    Type: Grant
    Filed: July 25, 2005
    Date of Patent: April 17, 2007
    Assignee: Freescale Semiconductor, Inc.
    Inventors: Gowrishankar L. Chindalore, Cheong M. Hong, Craig T. Swift
  • Patent number: 7196364
    Abstract: A rectifier device, based on a novel operation principle completely different from that of conventional molecular electronic devices, is made by coupling two or more molecules or molecule arrays (11) at certain joints. By making use of the phenomenon that transfer of an excited state or exciton from one molecule or molecule array to another molecule or molecule array coupled thereto progresses asymmetrically due to spatial asymmetry at the joint, a rectifying function related to the transfer of the excited state of exciton is obtained. Additionally, by controlling the rectification property in addition to the rectification function, an ion sensor device or a switching device is made. A resistor device may be inserted in the rectifier device.
    Type: Grant
    Filed: April 6, 2005
    Date of Patent: March 27, 2007
    Assignee: Sony Corporation
    Inventor: Masao Oda
  • Patent number: 7148523
    Abstract: A rectifier device, based on a novel operation principle completely different from that of conventional molecular electronic devices, is made by coupling two or more molecules or molecule arrays (11) at certain joints. By making use of the phenomenon that transfer of an excited state or exciton from one molecule or molecule array to another molecule or molecule array coupled thereto progresses asymmetrically due to spatial asymmetry at the joint, a rectifying function related to the transfer of the excited state of exciton is obtained. Additionally, by controlling the rectification property in addition to the rectification function, an ion sensor device or a switching device is made. A resistor device may be inserted in the rectifier device.
    Type: Grant
    Filed: April 6, 2005
    Date of Patent: December 12, 2006
    Assignee: Sony Corporation
    Inventors: Masao Oda, Hajime Matsumura
  • Patent number: 7141431
    Abstract: This invention provides a novel fluorescent particle including a core or carrier particle having on its surface a plurality of smaller polymeric particles or nanoparticles, which are stained with different fluorescent dyes. When excited by a light source they are capable of giving off multiple fluorescent emissions simultaneously, which is useful for multiplexed analysis of a plurality of analytes in a sample. The coupled complex particles carrying on their surface fluorescent nanoparticles, methods of preparing such polymer particles, and various applications and methods of using such particles are claimed.
    Type: Grant
    Filed: June 30, 2005
    Date of Patent: November 28, 2006
    Assignee: Luminex Corporation
    Inventors: Mark B. Chandler, Don J. Chandler, Jason Bedre