Patents Examined by Holly T. To
  • Patent number: 7810587
    Abstract: The invention relates to a drill bit containing tungsten carbide powder having powder particles which have a core of cast tungsten carbide and a shell of tungsten monocarbide.
    Type: Grant
    Filed: April 9, 2009
    Date of Patent: October 12, 2010
    Assignee: H.C. Starck GmbH
    Inventors: Christian Gerk, Klause-Dieter Wernicke
  • Patent number: 7807265
    Abstract: A partially passivating core shell particle includes a luminescent nanocrystal core, and a partially passivating semiconducting core shell on a surface of the nanocrystal. The shell allows selected analytes to alter a luminescent response of the core shell particle. A quantum dot-based sensing system includes at least one partially passivating core shell particle, a light source for irradiating the partially passivating core shell particle, and a light detector for receiving emissions from the particle, wherein emissions from the core shell particle change in response to the presence of at least one analyte.
    Type: Grant
    Filed: May 14, 2007
    Date of Patent: October 5, 2010
    Assignee: University of Central Florida Research Foundation, Inc.
    Inventors: Swadeshmukul Santra, Subir Kumar Sabui, Paul H. Holloway, Heesun Yang
  • Patent number: 7803210
    Abstract: The present invention provides a method for producing nanometer-size spherical particles. The method includes a first step for producing intermediate spherical particles. The intermediate spherical particles include a polycrystalline or single-crystalline region, having a particle size of 1 to 300 ?m. The method of the present invention further includes a second step for producing final spherical particles. The second step uses a swirling plasma gas flow having the central axis thereof, the central axis running through an area between an anode and a cathode of a plasma generator. The intermediate spherical particles are discharged along the axis to subject the intermediate spherical particles to a plasma atmosphere of the area to form the final spherical particles.
    Type: Grant
    Filed: August 9, 2007
    Date of Patent: September 28, 2010
    Assignee: Napra Co., Ltd.
    Inventors: Shigenobu Sekine, Yurina Sekine
  • Patent number: 7803345
    Abstract: A method for making the microporous carbon with modified pore size distribution and advanced sorption behavior. The carbon is derived from metal or metalloid carbides. The method employs the use of oxidant in reaction medium that during the carbide conversion into carbon widens small micropores, which otherwise would be hardly accessed by sorbing molecules or ions in practical applications. The microporous carbon obtained is free of impurities and possesses extremely narrow pore size distribution.
    Type: Grant
    Filed: May 31, 2005
    Date of Patent: September 28, 2010
    Assignee: HLR Development OU
    Inventors: Jaan Leis, Mati Arulepp, Marko Lätt, Helle Kuura
  • Patent number: 7799723
    Abstract: This invention relates to a process for preparing magnesium alkoxide granulates. The process includes the steps of reacting magnesium metal with at least one compound of formula AlR3-nHaln and an alcohol in a non-coordinating solvent. R is an alkyl or aryl radical, Hal is a halogen radical and n is in the range of between 0 and 2.
    Type: Grant
    Filed: September 1, 2006
    Date of Patent: September 21, 2010
    Assignee: Chemetall GmbH
    Inventors: Rainer Dietz, Ute Emmel, Ulrich Wietelmann, Gerd Kr{hacek over (a)}mer
  • Patent number: 7799426
    Abstract: Nanoparticle precursor structures, nanoparticle structures, and composite materials that include the nanoparticle structures in a polymer to form a composite material. The nanoparticle structures have chemical linkage moieties capable of forming non-covalent bonds with portions of a polymer for the composite material. Such composite materials are useful as biomaterials in medical devices.
    Type: Grant
    Filed: November 7, 2008
    Date of Patent: September 21, 2010
    Assignee: Boston Scientific Scimed, Inc.
    Inventors: J. Thomas Ippoliti, Scott R. Schewe, Liliana L. Atanasoska, Robert W. Warner
  • Patent number: 7799425
    Abstract: A composite nanoparticle makes it possible to significantly lower the temperature to separate an organic substance from a core and uniformly sinter the cores, and can be applied to bonding that replaces soldering. The composite nanoparticle includes a metal component as a core, and an organic substance surrounding the metal component and bonded to it by physical adsorption. The composite nanoparticles can be produced by allowing an inorganic metal salt and an organic material to coexist, and heating the inorganic metal salt and the organic material to a predetermined temperature and holding them at the temperature for a predetermined time so that the inorganic metal salt is decomposed to produce metal nanoparticles. Thus, an organic substance is bonded to the metal nanoparticles by physical adsorption without forming an organometallic compound through a reaction between the metal nanoparticles and the organic substance.
    Type: Grant
    Filed: February 4, 2005
    Date of Patent: September 21, 2010
    Assignee: Ebara Corporation
    Inventors: Yusuke Chikamori, Naoaki Ogure
  • Patent number: 7794839
    Abstract: This invention is directed to coated water-swellable materials, typically solid, particulate, water-swellable materials, i.e. materials that comprise hydrogel-forming polymers, whereof at least a part is coated with a coating, which substantially does not break when the polymers swell, as set out in the method herein. Said coating is present at a level of at least 1% by weight of the water-swellable material. The coating comprises preferably an elastomeric polymeric material. The invention also relates products, e.g., disposable absorbent articles, comprising such coated water-swellable material.
    Type: Grant
    Filed: March 17, 2009
    Date of Patent: September 14, 2010
    Assignee: The Procter & Gamble Company
    Inventors: Mattias Schmidt, Axel Meyer, Bruno Johannes Ehrnsperger, Stephen Allen Goldman, Edward Joseph Urankar
  • Patent number: 7790285
    Abstract: This invention provides a nano-scaled graphene platelet (NGP) having a thickness no greater than 100 nm and a length-to-width ratio no less than 3 (preferably greater than 10). The NGP with a high length-to-width ratio can be prepared by using a method comprising (a) intercalating a carbon fiber or graphite fiber with an intercalate to form an intercalated fiber; (b) exfoliating the intercalated fiber to obtain an exfoliated fiber comprising graphene sheets or flakes; and (c) separating the graphene sheets or flakes to obtain nano-scaled graphene platelets. The invention also provides a nanocomposite material comprising an NGP with a high length-to-width ratio. Such a nanocomposite can become electrically conductive with a small weight fraction of NGPs. Conductive composites are particularly useful for shielding of sensitive electronic equipment against electromagnetic interference (EMI) or radio frequency interference (RFI), and for electrostatic charge dissipation.
    Type: Grant
    Filed: December 17, 2007
    Date of Patent: September 7, 2010
    Assignee: Nanotek Instruments, Inc.
    Inventors: Aruna Zhamu, Jiusheng Guo, Bor Z. Jang
  • Patent number: 7790286
    Abstract: Modified and functionalized metallic nanoclusters capable of providing an enhanced Raman signal from an organic Raman-active molecule incorporated therein are provided. For example, modifications include coatings and layers, such as adsorption layers, metal coatings, silica coatings, and organic layers. The nanoclusters are generally referred to as COINs (composite organic inorganic nanoparticles) and are capable of acting as sensitive reporters for analyte detection. A metal that enhances the Raman signal from the organic Raman-active compound is inherent in the nanocluster. A variety of organic Raman-active compounds and mixtures of compounds can be incorporated into the nanocluster.
    Type: Grant
    Filed: February 25, 2008
    Date of Patent: September 7, 2010
    Assignee: Intel Corporation
    Inventors: Jingwu Zhang, Xing Su, Lei Sun
  • Patent number: 7785710
    Abstract: Particles comprising a combination of a carboxyalkyl cellulose and a galactomannan polymer or a glucomannan polymer, wherein the particles comprise a plurality of non-permanent metal crosslinks.
    Type: Grant
    Filed: October 2, 2006
    Date of Patent: August 31, 2010
    Assignee: Weyerhaeuser NR Company
    Inventors: S. Ananda Weerawarna, Mengkui Luo, Alena Michalek
  • Patent number: 7781060
    Abstract: Hollow silica nanoparticles can have well defined non-porous shells with low shell fragmentation and good dispersability. These well defined hollow particles can be formed through the controlled oxidation of silicon nanoparticles in an organic solvent. The hollow nanoparticles can have a submicron secondary particle sizes. The hollow silica nanoparticles can be incorporated into polymer composites, such as low index-of-refraction composites, for appropriate applications.
    Type: Grant
    Filed: December 18, 2007
    Date of Patent: August 24, 2010
    Assignee: NanoGram Corporation
    Inventors: Weidong Li, Shivkumar Chiruvolu, Hui Du, Igor Altman, Ronald J. Mosso, Nobuyuki Kambe
  • Patent number: 7780937
    Abstract: Granules based on silicon dioxide and having the properties: Average grain size: 10 to 120 ?m BET surface area: 40 to 400 m2/g Pore volume: 0.5 to 2.5 ml/g Pore size distribution: less than 5% of the total pore volume exists of pores with a diameter < 5 nm, rest meso- and macropores pH value: 3.6 to 8.5 Tapped density: 220 to 700 g/l They are prepared by dispersing silicon dioxide in water, spray drying, optionally heating and/or silanizing. Whereas a pyrogenic silicon dioxide powder with a BET surface area of 30 to 90 m2/g, a DBP index of 80 or less, a mean aggregate area of less than 25000 nm2 and a mean aggregate circumference of less than 1000 nm, wherein at least 70% of the aggregates have a circumference of less than 1300 nm or a high-purity pyrogenically prepared silicon dioxide having metal contents of less than 0.
    Type: Grant
    Filed: February 15, 2006
    Date of Patent: August 24, 2010
    Assignee: Evonik Degussa GmbH
    Inventors: Jürgen Meyer, Monika Oswald, Klaus Deller
  • Patent number: 7776450
    Abstract: A thermal spraying powder contains 30 to 50% by mass of chromium carbide with the remainder being an alloy containing chromium, aluminum, yttrium, and at least one of cobalt and nickel. The thermal spraying powder has an average particle size of 20 to 60 ?m. The thermal spraying powder may contain 20% by mass or less of yttrium oxide in place of a part of the alloy. A thermal spray coating obtained by thermal spraying of the thermal spraying powder, particularly, a thermal spray coating obtained by high-velocity flame spraying of the thermal spraying powder is suitable for the purpose of a hearth roll.
    Type: Grant
    Filed: March 27, 2008
    Date of Patent: August 17, 2010
    Assignee: Fujimi Incorporated
    Inventors: Hiroaki Mizuno, Satoshi Tawada, Isao Aoki, Noriyuki Yasuo, Tatsuo Suidzu, Sho Hashimoto
  • Patent number: 7776442
    Abstract: A nanoparticle powder of silver has an average particle diameter measured by TEM observation (DTEM) of 30 nm or less, an aspect ratio of less than 1.5, an X-ray crystallite size (Dx) of 30 nm or less, a degree of single crystal grain {(DTEM)/(Dx)} of 5.0 or less, and a CV value {100×standard deviation (?)/number average diameter (DTEM)} of less than 40%. The nanoparticle powder of silver has adhered to the particle surface thereof an organic protective agent having a molecular weight of 100 to 400. The nanoparticle powder is obtained by subjecting a silver salt to reduction treatment at a temperature of 85 to 150° C. in an alcohol having a boiling point of 85 to 150° C. and in the co-presence of an organic protective agent.
    Type: Grant
    Filed: February 1, 2006
    Date of Patent: August 17, 2010
    Assignee: Dowa Electronics Materials Co., Ltd.
    Inventor: Kimitaka Sato
  • Patent number: 7776995
    Abstract: The present invention relates to a process for producing polyester particles, wherein the process includes: (1) discharging a molten polyester having a melt viscosity of from 0.5 Pa·s to 50 Pa·s from a die hole thereby creating polyester strands; (2) bringing the polyester strands into contact with a liquefied fluid for cooling to lead the strands to a cutter together with the liquefied fluid; and (3) cutting the polyester strands led to the cutter; wherein steps (1) to (3) are carried out sequentially and the drawing rate ratio of the polyester strands is from 1.5 to 100 and represented by the following formula: drawing rate ratio=(linear velocity of strands immediately before cut (v2 (m/s)))/(linear velocity of molten polyester when discharged from die hole (v1 (m/s))).
    Type: Grant
    Filed: April 27, 2006
    Date of Patent: August 17, 2010
    Assignee: Mitsubishi Chemical Corporation
    Inventor: Hisashi Kimura
  • Patent number: 7767261
    Abstract: Compositions, inks and methods for forming a patterned silicon-containing film and patterned structures including such a film. The composition generally includes (a) passivated semiconductor nanoparticles and (b) first and second cyclic Group IVA compounds in which the cyclic species predominantly contains Si and/or Ge atoms. The ink generally includes the composition and a solvent in which the composition is soluble. The method generally includes the steps of (1) printing the composition or ink on a substrate to form a pattern, and (2) curing the patterned composition or ink. In an alternative embodiment, the method includes the steps of (i) curing either a semiconductor nanoparticle composition or at least one cyclic Group IVA compound to form a thin film, (ii) coating the thin film with the other, and (iii) curing the coated thin film to form a semiconducting thin film.
    Type: Grant
    Filed: October 29, 2008
    Date of Patent: August 3, 2010
    Assignee: Kovio, Inc.
    Inventors: Klaus Kunze, Scott Haubrich, Fabio Zurcher, Brent Ridley, Joerg Rockenberger
  • Patent number: 7758961
    Abstract: A process for creating readily or highly dispersible nanoparticles on which chemically reactive functional groups or ligands have been placed. An ultra-high shear fluidic processor is used to change the size distribution of nanoparticle agglomerations and facilitate the formation of stable dispersions of such nanoparticles, as well as the placement of various chemically reactive functional groups or ligands on exposed surface areas of such nanoparticles. Such functionalized nanoparticle agglomerations have a broader size distribution (with a substantial increase in the proportion of smaller agglomerations), can exhibit enhanced dispersion characteristics and, when dispersed in various bulk materials, can impart to such bulk materials the desirable physical or chemical properties associated with the selected chemically active functional groups that have been attached to the surface areas of such agglomerations.
    Type: Grant
    Filed: February 28, 2008
    Date of Patent: July 20, 2010
    Assignee: Milliken & Company
    Inventors: Jamie N. Jones, F. Brent Neal, Hao Zhou, Philip Wilson
  • Patent number: 7759530
    Abstract: The invention relates to a method for hydrogenation of an organic compound comprising at least one carbonyl group, whereby the organic compound is brought into contact with a moulded body in the presence of hydrogen. Said body may be produced by a method in which (i) an oxidic material is prepared, comprising copper oxide, aluminum oxide, and at least one oxide of lanthanum, tungsten, molybdenum, titanium, or zirconium, followed by (ii) addition of powdered metallic copper, copper platelets, powdered cement, graphite, mixtures or a mixture thereof with graphite to the oxidic material and (iii) moulding the mixture from (ii) to give a moulded body, characterised in that the moulded body is in the form of catalyst tablets or catalyst extrudates with a diameter d and/or height h<2.5 mm, catalyst beads with a diameter d<2.5 mm or catalyst honeycomb with a cell diameter rz<2.5 mm.
    Type: Grant
    Filed: July 7, 2005
    Date of Patent: July 20, 2010
    Assignee: BASF Aktiengesellschaft
    Inventors: Christophe Houssin, Henrik Junicke, Andrea Haunert
  • Patent number: 7754330
    Abstract: Provided are organic silicon oxide fine particles which can be formed into a porous film having a dielectric constant and mechanical strength expected as a high-performance porous insulating film and having excellent chemical stability, and a preparation method thereof.
    Type: Grant
    Filed: May 27, 2009
    Date of Patent: July 13, 2010
    Assignees: Shin-Etsu Chemical Co., Ltd., Panasonic Corporation
    Inventors: Yoshitaka Hamada, Fujio Yagihashi, Takeshi Asano, Hideo Nakagawa, Masaru Sasago