Electrolytic Device Making (e.g., Capacitor) Patents (Class 29/25.03)
  • Publication number: 20130100584
    Abstract: Super capacitor including a gel electrolyte and manufacturing method thereof are provided. The gel electrolyte is one selected from a group consisting of a P(AN-EG-AN) copolymer, a P(AN-EG) copolymer, a P(EG-AN-EG) copolymer and a combination thereof.
    Type: Application
    Filed: October 19, 2012
    Publication date: April 25, 2013
    Applicant: Cheng Kung University
    Inventor: Cheng Kung University
  • Publication number: 20130100574
    Abstract: A vacuum capacitor has at least two electrodes in a vacuum, the electrodes being manufactured from, or coated with, aluminium or an aluminium alloy; and the housing of the vacuum capacitor includes an insulating (e.g., ceramic) part and two or more conducting parts.
    Type: Application
    Filed: June 28, 2010
    Publication date: April 25, 2013
    Applicant: Comet AG
    Inventors: Mike Abrecht, Walter Bigler, Philipp Jäggi, Mark Joachim Mildner
  • Publication number: 20130092542
    Abstract: An apparatus to remove ions, the apparatus having a housing including an inlet to let water in an interior of the housing, an outlet to let water out of the interior of the housing, a first electrode having a current collector, a second electrode, and a spacer to separate the first and second electrodes and to allow water to flow between the first and second electrodes. The apparatus also has a connector to connect the first electrode, or the second electrode, or both first and second electrodes, with an electrical source. The connector may have two connector parts to clamp the current collector in between the connector parts, the connector constructed and arranged to avoid water-metal contact.
    Type: Application
    Filed: April 28, 2011
    Publication date: April 18, 2013
    Applicant: VOLTEA B.V.
    Inventors: Bart Van Limpt, Hank Robert Reinhoudt, Albert Van Der Wal
  • Patent number: 8419809
    Abstract: A solid electrolytic capacitor having an even conductive polymer layer and a method of manufacturing the same are provided. The method of manufacturing a solid electrolytic capacitor includes the steps of forming a conductive polymer layer on an anode element by bringing a dispersion containing a conductive solid and a first solvent into contact with the anode element having a dielectric film formed thereon, washing the anode element with a second solvent higher in boiling point than the first solvent, in which the conductive solid can be dispersed, after the conductive polymer layer is formed, and drying the anode element washed with the second solvent at a temperature not lower than the boiling point of the first solvent and lower than the boiling point of the second solvent.
    Type: Grant
    Filed: November 18, 2010
    Date of Patent: April 16, 2013
    Assignees: SANYO Electric Co., Ltd., Saga Sanyo Industries Co., Ltd.
    Inventor: Yoshiaki Ishimaru
  • Patent number: 8422201
    Abstract: A solid electrolytic capacitor comprising an anode composed of a valve metal or its alloy, a dielectric layer formed on a surface of the anode, a coupling agent layer formed by subjecting the dielectric layer to a surface treatment with a coupling agent having a phosphonic acid group, a conductive polymer layer formed on the coupling agent layer, and a cathode layer formed on the conductive polymer layer.
    Type: Grant
    Filed: September 23, 2009
    Date of Patent: April 16, 2013
    Assignee: Sanyo Electric Co., Ltd.
    Inventors: Gaku Harada, Takeshi Sano, Miwa Ogawa
  • Publication number: 20130089790
    Abstract: A self-supporting carbon electrode can include, or consist essentially of, nanostructured carbon, for example, oxygen-functionalized nanostructured carbon.
    Type: Application
    Filed: October 11, 2011
    Publication date: April 11, 2013
    Inventors: Hye Ryung Byon, Seung Woo Lee, Betar Gallant, Yang Shao-Horn, Paula Hammond, Nasim Hyder
  • Patent number: 8416557
    Abstract: A solid electrolytic capacitor includes an anode foil, a solid electrolyte provided on the anode foil and made of conductive polymer, and a cathode foil provided on the solid electrolyte and facing the anode foil across the solid electrolyte. The anode foil includes an anode base made of aluminum, a rough surface layer made of aluminum and provided on a surface of the anode base, and a dielectric oxide layer provided on the rough surface layer and contacting the solid electrolyte. The cathode foil includes a cathode base made of aluminum, and a nickel layer provided on a surface of the cathode base and contacting the solid electrolyte. The nickel layer faces the dielectric oxide layer of the anode foil across the solid electrolyte. The nickel layer is made of nickel and nickel oxide. This solid electrolytic capacitor has a large capacitance and a low equivalent series resistance while being inexpensive and highly reliable.
    Type: Grant
    Filed: October 17, 2008
    Date of Patent: April 9, 2013
    Assignee: Panasonic Corporation
    Inventors: Tatsuji Aoyama, Tsuyoshi Yoshino
  • Publication number: 20130083454
    Abstract: A capacitor and a manufacturing method thereof with improved capacitance density, simplified production process, and/or improved high frequency characteristic without having to form a nano-scale pattern are provided. A capacitor element 12 includes a dielectric layer made of porous oxide substrate, first and second internal electrodes formed within holes of the porous oxide substrate, a first external electrode electrically connected to the first internal electrode, a second external electrode electrically connected to the second internal electrodes.
    Type: Application
    Filed: August 24, 2012
    Publication date: April 4, 2013
    Applicant: TAIYO YUDEN CO., LTD.
    Inventor: Hidetoshi MASUDA
  • Patent number: 8411416
    Abstract: A surface mount electronic component includes an element, an anode terminal, a cathode terminal, and an outer package body. The element has a configuration including an anode, and a cathode formed on a part of the surface of the anode via a dielectric substance. An anode terminal is electrically connected to the anode, and a cathode terminal is electrically connected to the cathode. The outer package body covers an element laminated body such that a part of the anode terminal and a part of the cathode terminal are exposed. The outer package body is made of a norbornene resin. Thus, an electronic component having high reliability can be achieved.
    Type: Grant
    Filed: June 17, 2010
    Date of Patent: April 2, 2013
    Assignee: Panasonic Corporation
    Inventors: Junichi Kurita, Kenji Kuranuki, Yuji Konda, Yukihiro Shimasaki
  • Publication number: 20130077206
    Abstract: An electro-chemical double layer capacitor comprises positive and negative electrodes, where the carbon material that is incorporated into the positive electrode is halogenated carbon material, while the carbon material that is incorporated into the negative electrode is un-halogenated carbon material. Further, the carbon material incorporated into each respective electrode can have a distinct pore size distribution. A pore volume ratio of the carbon material incorporated into the positive electrode is greater than a pore volume ratio of the carbon material incorporated into the negative electrode. The pore volume ratio R is defined as R=V1/V, where V1 is a total volume of pores having a pore size of less than 1 nm, and V is a total volume of pores having a pore size greater than 1 nm.
    Type: Application
    Filed: September 23, 2011
    Publication date: March 28, 2013
    Inventors: Kishor Purushottam Gadkaree, Shrisudersan Jayaraman
  • Publication number: 20130075256
    Abstract: A gas sensor element includes an insulating ceramic base, a solid electrolyte body, and a heating element. The solid electrolyte body is disposed in an opening of the insulating ceramic base and has a measuring electrode affixed to one of major surfaces thereof and a reference electrode affixed to the other major surface. The measuring electrode is exposed to gas to be measured. The reference electrode is exposed to a reference gas. The heating element works to activate the solid electrolyte body and is mounted on one of opposed surfaces of the insulating ceramic base on the same side as the major surface of the solid electrolyte body on which the reference electrode is disposed. Specifically, the insulating ceramic base is located between the solid electrolyte body and the heating element, thereby ensuring a desired degree of electric insulation between the heating element and the reference electrode.
    Type: Application
    Filed: September 27, 2012
    Publication date: March 28, 2013
    Applicant: DENSO CORPORATION
    Inventor: DENSO CORPORATION
  • Patent number: 8404001
    Abstract: To suppress decomposition of lithium cobalt oxide and formation of a decomposition product. To suppress the reaction between oxygen in lithium cobalt oxide and a current collector. To obtain a power storage device having high charge and discharge capacity. In a method for manufacturing a power storage device, in forming a lithium cobalt oxide layer over a positive electrode current collector by a sputtering method using a target containing lithium cobalt oxide and a sputtering gas containing Ar, the positive electrode current collector is heated at a temperature at which c-axes of crystals of lithium cobalt oxide are aligned and cobalt oxide is not formed. The heating temperature of the positive electrode current collector is higher than or equal to 400° C. and lower than 600° C.
    Type: Grant
    Filed: March 30, 2012
    Date of Patent: March 26, 2013
    Assignee: Semiconductor Energy Laboratory Co., Ltd.
    Inventor: Kazutaka Kuriki
  • Patent number: 8405957
    Abstract: An electrochemical device having excellent safety at a high temperature is provided by using a separator for an electrochemical device, which is made of a porous film including a first separator layer and a second separator layer. The first separator layer includes, as a main ingredient, at least one kind of resin selected from the group consisting of resin A that has a melting point in a range of 80° C. to 130° C., and resin B that absorbs a nonaqueous electrolyte and swells due to heating and whose swelling degree is increased as the temperature rises, the second separator layer includes, as a main ingredient, a filler that has a heat-resistant temperature of not lower than 150° C., and at least one of the first separator layer and the second separator layer includes flakes.
    Type: Grant
    Filed: December 8, 2006
    Date of Patent: March 26, 2013
    Assignee: Hitachi Maxell, Ltd.
    Inventors: Hideaki Katayama, Toshihiro Abe, Nobuaki Matsumoto, Yoshinori Sato
  • Publication number: 20130070391
    Abstract: Electrochemical capacitors and methods for producing such electrochemical capacitors. The electrochemical capacitor can have an initial charged state and a cycled charged state and can include an anode, a cathode, and an electrolyte. The anode can include a first mixture having a first plurality of electrically conductive carbon-comprising particles having a first average porosity. The cathode can include a second mixture having a second plurality of electrically conductive carbon-comprising particles having a second average porosity greater than said first average porosity. The electrolyte can be physically and electrically contacting said anode and said cathode, and the first mixture in the cycled charged state can be substantially free of lithium metal particles and can further include a plurality of lithium ions intercalating the first plurality of carbon comprising particles. The mass ratio of the cathode and the electrolyte can be less than 1.
    Type: Application
    Filed: November 14, 2012
    Publication date: March 21, 2013
    Inventor: Jian-ping ZHENG
  • Publication number: 20130070393
    Abstract: A solid electrolytic capacitor is impregnated with a conductive polymer dispersion solution comprising sorbitol. In the capacitor, the hydroxyl group of sorbitol acts as the oxygen source necessary for the anodic oxidation of anodic oxide film when voltage is applied to the solid electrolytic capacitor. Consequently, the oxide film is repaired and withstand voltage property is improved, which is thought to be due to the anodic oxidation that repairs the damage on the oxide film. Superior electric capacitance can further be attained by specifying the sorbitol content in the dispersion solution to be at 60-90 wt %.
    Type: Application
    Filed: March 29, 2011
    Publication date: March 21, 2013
    Inventors: Nozomu Kamiyama, Kenji Machida, Atsushi Yoshizawa, Sekihiro Takeda, Kenji Tamamitsu
  • Patent number: 8400758
    Abstract: A solid electrolytic capacitor according to the present invention includes a solid electrolyte type capacitor element including a dielectric layer intervening between an anode section and a cathode section, an anode terminal connected electrically to the anode section of the capacitor element through a pad member, and a cathode terminal connected electrically to the cathode section of the capacitor element. Here, on facing surfaces of the pad member and the anode terminal, a joint part which joins the pad member and the anode terminal electrically is formed at a position adjacent to a first lateral surface of the pad member located on the cathode terminal side, and a second lateral surface of the pad member on the opposite side to the first lateral surface and a partial area of a lateral end surface of the anode terminal are flush with each other.
    Type: Grant
    Filed: July 30, 2010
    Date of Patent: March 19, 2013
    Assignee: SANYO Electric Co., Ltd.
    Inventor: Hayatoshi Ihara
  • Publication number: 20130063866
    Abstract: The present disclosure is related to hybrid capacitors specifically to PbO2/Activated Carbon hybrid capacitors. The hybrid super capacitor of the present disclosure is simple to assemble, bereft of impurities and can be fast charged/discharged with high faradiac-efficiency.
    Type: Application
    Filed: June 28, 2010
    Publication date: March 14, 2013
    Inventors: Ashok Kumar Shukla, Musuwathi Krishnamoorthy Ravikumar, Shaik Abdul Gaffoor
  • Publication number: 20130061461
    Abstract: In a vacuum container (2), a bag-shaped laminate film (12) containing a battery element (11) and having an opening (12a) is pinched at positions corresponding to two principal surfaces (11a) of the battery element (11), the battery element (11) having a positive layer and a negative layer stacked via a separator. Pressure in the vacuum container (2) is reduced. An electrolytic solution (20) is poured from an electrolytic-solution supply line (4) into the bag-shaped laminate film (12) through the opening (12a) with pressure in the vacuum container (2) kept reduced until the entire battery element (11) is immersed in the electrolytic solution (20). The reduced pressure in the vacuum container (2) is increased to make the battery element (11) absorb the electrolytic solution (20) by means of the difference in pressure.
    Type: Application
    Filed: October 11, 2012
    Publication date: March 14, 2013
    Applicants: NISSAN MOTOR CO., LTD, NEC ENERGY DEVICES, LTD
    Inventors: NEC ENERGY DEVICES, LTD, NISSAN MOTOR CO., LTD
  • Publication number: 20130045425
    Abstract: It is an object of the present invention to provide a three-dimensional network aluminum porous body which can be used for a process continuously producing an electrode and enables to produce a current collector having small electric resistance in the current collecting direction, and an electrode using the aluminum porous body, and a production method thereof. In a sheet-shaped three-dimensional network aluminum porous body for a current collector, when one of two directions orthogonal to each other is taken as an X-direction and the other is taken as a Y-direction, a cell diameter in the X-direction of the three-dimensional network aluminum porous body differs from a cell diameter in the Y-direction thereof.
    Type: Application
    Filed: August 8, 2012
    Publication date: February 21, 2013
    Applicants: SUMITOMO ELECTRIC TOYAMA CO., LTD., SUMITOMO ELECTRIC INDUSTRIES, LTD.
    Inventors: Akihisa HOSOE, Kazuki OKUNO, Hajime OTA, Koutarou KIMURA, Kengo GOTO, Hideaki SAKAIDA, Junichi NISHIMURA
  • Publication number: 20130044405
    Abstract: An electrode useful in an energy storage system, such as a capacitor, includes an electrode that includes at least one to a plurality of layers of compressed carbon nanotube aggregate. Methods of fabrication are provided. The resulting electrode exhibits superior electrical performance in terms of gravimetric and volumetric power density.
    Type: Application
    Filed: August 16, 2012
    Publication date: February 21, 2013
    Applicant: FASTCAP SYSTEMS CORPORATION
    Inventors: Nicolo Michele Brambilla, Riccardo Signorelli
  • Patent number: 8377148
    Abstract: There is provided a method for producing a capacitor which is capable of producing a capacitor having a high withstand voltage and low leakage current, the method for producing a capacitor which is a method for producing a capacitor having a substrate serving as one electrode, a dielectric layer formed on top of the substrate, and the other electrode formed on top of the dielectric layer, the method including a step for forming an amorphous titanium oxide layer which is to become the dielectric layer on top of the substrate by anodizing the substrate, which is composed of titanium or titanium alloy, in an electrolyte solution containing hydrogen peroxide and having a temperature of 3° C. or less; and a step for forming the other electrode on top of the dielectric layer.
    Type: Grant
    Filed: April 16, 2010
    Date of Patent: February 19, 2013
    Assignee: Showa Denko K.K.
    Inventors: Akihiko Shirakawa, Koji Tokita, Chunfu Yu
  • Patent number: 8379369
    Abstract: The invention relates to a substrate for solid electrolytic capacitor, wherein a first layer in the shielding layer formed by laminating a plurality of layers on top of each other, provided in an area for separating an anode part and a cathode part of the substrate for a solid electrolytic capacitor having a porous layer on its surface from a solution or dispersion of a heat resistant resin or its precursor, free from a shielding layer modification additive (except for a silane coupling agent) or containing a shielding layer modification additive content of not more than 0.1% by mass (based on the mass of the heat resistant resin or its precursor). The present invention enables to provide a method for producing a substrate for a solid electrolytic capacitor comprising a shielding layer made of a masking material which ensures the insulation between the anode part and the cathode part of the solid electrolytic capacitor; and a solid electrolytic capacitor using the substrate.
    Type: Grant
    Filed: September 21, 2007
    Date of Patent: February 19, 2013
    Assignee: Murata Manufacturing Co., Ltd.
    Inventors: Hirofumi Fukunaga, Hideki Oohata
  • Patent number: 8379370
    Abstract: A composite material (A) includes a porous sintered body (12) and an insulation film (2) which covers the porous sintered body (12). The porous sintered body (12) is made of a combination of a metal element (12a) which has a melting temperature not lower than 1600° C., and a nonmetal element (12b, 12c). The insulation film (2) includes the nonmetal element (12b, 12c) and N.
    Type: Grant
    Filed: March 7, 2008
    Date of Patent: February 19, 2013
    Assignee: Rohm Co., Ltd.
    Inventors: Naoaki Tsurumi, Yasuo Kanetake
  • Patent number: 8375539
    Abstract: A method of manufacturing a low capacitance density, high voltage MIM capacitor and the high density MIM capacitor. The method includes depositing a plurality of plates and a plurality of dielectric layers interleaved with one another. The method further includes etching a portion of an uppermost plate of the plurality of plates while protecting other portions of the uppermost plate. The protected other portions of the uppermost plate forms a top plate of a first metal-insulator-metal (MIM) capacitor and the etching exposes a top plate of a second MIM capacitor.
    Type: Grant
    Filed: August 5, 2009
    Date of Patent: February 19, 2013
    Assignee: International Business Machines Corporation
    Inventors: James Stuart Dunn, Zhong-Xiang He, Anthony K. Stamper
  • Patent number: 8377149
    Abstract: A process for making a catalytic electrode, a process for making an electrochemical cell with a catalytic electrode, and an electrochemical cell made according to the process. The catalytic electrode has an active layer comprising a catalytic material, an electrically conductive material and a binder, and a gas diffusion layer including a material that is permeable to gas entering or escaping from the cell but essentially impermeable to electrolyte. The gas diffusion layer is adhered to the active layer by a patterned pressure bonding process to provide the catalytic electrode in which the entire gas diffusion area is adhered to the active layer, with areas of relatively high and relatively low adhesion. The electrode has a high overall bond strength, and the permeability of the gas diffusion layer remains high it has been adhered to the active layer to provide excellent high power capability.
    Type: Grant
    Filed: December 14, 2010
    Date of Patent: February 19, 2013
    Assignee: Eveready Battery Company, Inc.
    Inventors: Robert Brian Dopp, Gary A Laisy
  • Patent number: 8379367
    Abstract: Provided is a hybrid super capacitor using a composite electrode that may enhance equivalent series resistance (ESR) using a carbon nanotube chain. The hybrid super capacitor includes: an anode 11 including an anode oxide layer 11a and an activated carbon layer applied 11b on the anode oxide layer 11a; and a cathode 21 being disposed to face the anode 11. The cathode 21 may include a silicon oxide layer 21a, a lithium titanium oxide layer 21b disposed on the silicon oxide layer 21a, and a carbon nanotube chain CT formed to pass through the silicon oxide layer 21a and the lithium titanium oxide layer 21b to thereby be electrically connected to each other, thereby enhancing ESR and expanding an output density and a lifespan of the hybrid super capacitor.
    Type: Grant
    Filed: June 1, 2011
    Date of Patent: February 19, 2013
    Assignee: Samhwa Capacitor Co., Ltd.
    Inventors: Young Joo Oh, Jung Rag Yoon, Kyung Min Lee, Du Hee Lee
  • Publication number: 20130041420
    Abstract: An example includes a capacitor case sealed to retain electrolyte, at least one anode disposed in the capacitor case, the at least one anode comprising a sintered portion disposed on a current collector formed of a framework defining cells extending to three axes, an anode conductor coupled to the current collector formed of a framework defining cells extending to three axes in electrical communication with the sintered portion, the anode conductor sealingly extending through the capacitor case to an anode terminal disposed on the exterior of the capacitor case with the anode terminal in electrical communication with the sintered portion, a cathode disposed in the capacitor case, a separator disposed between the cathode and the anode and a cathode terminal disposed on an exterior of the capacitor case and in electrical communication with the cathode, wherein the anode terminal and the cathode terminal are electrically isolated from one another.
    Type: Application
    Filed: August 1, 2012
    Publication date: February 14, 2013
    Inventor: Gregory J. Sherwood
  • Publication number: 20130040806
    Abstract: A catalyst for the electrolysis of water molecules and hydrocarbons, the catalyst including catalytic groups comprising A1-xB2?yB?yO4 spinels having a cubical M4O4 core, wherein A is Li or Na, B and B? are independently any transition metal or main group metal, M is B, B?, or both, x is a number from 0 to 1, and y is a number from 0 to 2. In photo-electrolytic applications, a plurality of catalytic groups are supported on a conductive support substrate capable of incorporating water molecules. At least some of the catalytic groups, supported by the support substrate, are able to catalytically interact with water molecules incorporated into the support substrate. The catalyst can also be used as part of a photo-electrochemical cell for the generation of electrical energy.
    Type: Application
    Filed: June 24, 2011
    Publication date: February 14, 2013
    Applicant: RUTGERS, THE STATE UNIVERSITY OF NEW JERSEY
    Inventors: G. Charles Dismukes, Martha Greenblatt
  • Publication number: 20130027846
    Abstract: The present invention provides an electrolytic capacitor which is increased in vibration resistance by making it possible to fix the capacitor element strongly in the outer case, without adversely affecting electrical characteristics of the capacitor element. In an electrolytic capacitor in which a capacitor element obtained by winding electrode foils with a separator therebetween and winding a winding stop tape on an outer circumferential surface thereof to stop the winding is inserted in an outer case and the outer case is sealed with a sealing member, a width of the winding stop tape is greater than or equal to a width of the electrode foils, and the capacitor element is press-fixed by an internal bottom surface of the outer case and the sealing member.
    Type: Application
    Filed: April 14, 2010
    Publication date: January 31, 2013
    Applicant: NIPPON CHEMI-CON CORPORATION
    Inventors: Hirotugu Ashino, Tsutomu Tanji
  • Publication number: 20130029215
    Abstract: A housing for an energy storage cell includes an interior which provides beneficial properties to fabricators of the cell. The cell may be hermetically sealed by conventional laser welding techniques.
    Type: Application
    Filed: July 27, 2012
    Publication date: January 31, 2013
    Applicant: FastCAP Systems Corporation
    Inventors: Riccardo Signorelli, John J. Cooley, Christopher J.S. Deane, James Epstein
  • Publication number: 20130027847
    Abstract: An electrolytic capacitor includes a capacitor element and an electrolyte solution impregnated into the capacitor element. The capacitor element includes an anode foil, cathode foil, separator, and a solid electrolytic layer. The anode foil has a dielectric layer on its surface, and the cathode foil confronts the anode foil. The separator is interposed between the anode foil and the cathode foil. The solid electrolytic layer is formed on the surfaces of the anode foil, cathode foil, and separator as an aggregate of fine particles of conductive polymer. The separator has an air-tightness not greater than 2.0 s/100 ml. Sizes of the fine particles measure not greater than 100 nm in diameter, and the fine particles are contained in an amount ranging from 0.3 mg/cm2 to 1.2 mg/cm2 converted to amounts per unit area of the anode foil.
    Type: Application
    Filed: July 16, 2012
    Publication date: January 31, 2013
    Applicant: PANASONIC CORPORATION
    Inventors: TATSUJI AOYAMA, HIROYUKI MATSUURA, YUUKI MURATA, YUKIYA SHIMOYAMA, JYUNYA KUSHIZAKI, HIDEHIRO SASAKI
  • Publication number: 20130022532
    Abstract: A method for producing an activated carbon material includes heating a non-lignocellulosic carbon precursor to form a carbon material and reacting the carbon material with steam to form an activated carbon material. The activated carbon material is suitable to form improved carbon-based electrodes for use in high energy density devices.
    Type: Application
    Filed: July 19, 2011
    Publication date: January 24, 2013
    Inventors: Kishor Purushottam Gadkaree, Andrew Fleitz Husted, Jia Liu
  • Publication number: 20130021719
    Abstract: The invention relates to a biaxially orientated, single or multi-layered porous film made of propylene homopolymer and/or propylene blockcopolymer and ss-nucleation agent. Said film has a Gurley value of between 50 to <400 s and shrinkage in the longitudinal direction of <5% at 100 DEG C./1 hour, and a transverse shrinkage of <10% at 100 DEG C./1 hour.
    Type: Application
    Filed: December 21, 2010
    Publication date: January 24, 2013
    Applicant: TREFAN GERMANY GMBH & CO KG
    Inventors: Detlef Busch, Bertram Schmitz, Dominic Klein
  • Publication number: 20130010402
    Abstract: A manufacturing method of solid capacitors includes the following steps. First step is forming a plurality of separated adhesive layer on an insulating substrate. Next step is disposing valve-metal wires on the adhesive layers. Next step is forming a conductive layer on the adhesive layer and the valve-metal wires. Next step is forming a dielectric structure on the exposed surface of the valve-metal wires and the conductive layer. Next step is forming a hydrophobic layer and a conductive unit. Next step is separating the formed structures as individual capacitors. Next step is packaging the formed structures and forming terminals connected to the formed structures.
    Type: Application
    Filed: July 5, 2011
    Publication date: January 10, 2013
    Applicants: APAQ TECHNOLOGY CO., LTD., INPAQ TECHNOLOGY CO., LTD.
    Inventors: WEI-CHIH LEE, MING-TSUNG CHEN
  • Patent number: 8349030
    Abstract: A process for the manufacturing valve metal anodes is provided. The process includes: providing a valve metal powder; pressing the valve metal powder to form a pellet; first deoxidizing the pellet with a first reducing agent to form a first oxide of reducing agent on the pellet; removing the first oxide of reducing agent from the pellet to form a deoxidized pellet; sintering the deoxidized pellet to form a sintered pellet; second deoxidizing the sintered pellet with a second reducing agent to form a second oxide of reducing agent on the sintered pellet; and removing said second oxide of reducing agent.
    Type: Grant
    Filed: September 21, 2011
    Date of Patent: January 8, 2013
    Assignee: Kemet Electronics Corporation
    Inventors: Steven C. Hussey, Yuri Freeman, Philip M. Lessner
  • Patent number: 8351186
    Abstract: An electrode foil for capacitor includes a substrate made of a valve metal foil, a first rough surface layer made of a valve metal formed on the first surface of the substrate by vapor deposition, and a second rough surface layer made of a valve metal formed on the second surface of the substrate by vapor deposition. The mode of diameters of pores of the first and second rough surface layers ranges from 0.02 ?m to 0.10 ?m. The thickness of the first rough surface layer is larger than the thickness of the second rough surface layer. The electrode foil has the rough surface layers formed by vapor deposition fabricated stably so that a solid electrolytic capacitor with high capacitance can be obtained using the foil.
    Type: Grant
    Filed: September 30, 2009
    Date of Patent: January 8, 2013
    Assignee: Panasonic Corporation
    Inventor: Akiyoshi Oshima
  • Patent number: 8351185
    Abstract: The invention provides an electronic component and a manufacturing method thereof that can achieve an improved adhesion strength when the electronic component is solder-mounted onto an external substrate and can thereby obtain considerably improved electric properties and reliabilities, etc. An electronic component, which is a capacitor 1, has: a circuit element 5a formed on a substrate 2; an electrode layer 5b connected to the circuit element 5a; passivation layers 6 and 8 that cover the electrode layer 5b; and terminal electrodes 9a and 9b connected to the electrode layer 5b via via-conductors Va and Vb formed through the passivation layers 6 and 8, the terminal electrodes 9a and 9b being formed to cover the side wall of the passivation layers 6 and 8.
    Type: Grant
    Filed: August 10, 2010
    Date of Patent: January 8, 2013
    Assignee: TDK Corporation
    Inventors: Takashi Ohtsuka, Kyung-Ku Choi, Tatsuo Namikawa, Hitoshi Yamaguchi
  • Patent number: 8343240
    Abstract: In a vacuum container (2), a bag-shaped laminate film (12) containing a battery element (11) and having an opening (12a) is pinched at positions corresponding to two principal surfaces (11a) of the battery element (11), the battery element (11) having a positive layer and a negative layer stacked via a separator. Pressure in the vacuum container (2) is reduced. An electrolytic solution (20) is poured from an electrolytic-solution supply line (4) into the bag-shaped laminate film (12) through the opening (12a) with pressure in the vacuum container (2) kept reduced until the entire battery element (11) is immersed in the electrolytic solution (20). The reduced pressure in the vacuum container (2) is increased to make the battery element (11) absorb the electrolytic solution (20) by the difference in pressure.
    Type: Grant
    Filed: January 30, 2009
    Date of Patent: January 1, 2013
    Assignees: NEC Energy Devices, Ltd., Nissian Motor Co., Ltd.
    Inventors: Kenichi Shimura, Yuta Motohashi, Gen Takayama, Masashi Watanabe
  • Publication number: 20120327554
    Abstract: A high capacitance single layer ceramic capacitor having a ceramic dielectric body containing one or more internal electrodes electrically connected to a metallization layer applied to the side and a top or bottom surface and a metallization pad electrically isolated from the metallization side and the top or bottom surface by a castellation or a via or separated by a dielectric insulating band positioned between the electrodes around the perimeter of the ceramic body and separating the top and bottom surfaces.
    Type: Application
    Filed: May 18, 2012
    Publication date: December 27, 2012
    Inventors: Ali Moalemi, Euan Patrick Armstrong
  • Publication number: 20120327560
    Abstract: The present disclosure is related to hybrid capacitors specifically to PbO2/Activated Carbon hybrid ultracapacitors. The present disclosure is also related to hybrid capacitors specifically to PbO2/Activated Carbon hybrid ultracapacitors with an inorganic thixotropic-gelled-polymeric-electrolyte. The hybrid ultracapacitors of the present disclosure is simple to assemble, bereft of impurities and can be fast charged/discharged with high faradiac-efficiency.
    Type: Application
    Filed: July 18, 2012
    Publication date: December 27, 2012
    Applicant: INDIAN INSTITUTE OF SCIENCE
    Inventors: Ashok Kumar SHUKLA, Anjan BANERJEE, Musuwathi Krishnamoorthy RAVIKUMAR, Shaik Abdul GAFFOOR
  • Publication number: 20120327559
    Abstract: The present invention discloses a new construction of ultracapacitor utilizing particles of transition metal nitride having negligible amount of halide impurities. The construction is expected to attain high specific energy density by using transition metal nitride particles and higher reliability by avoiding potential corrosion of metal components with halide impurities. The transition metal nitride particles are preferably synthesized by basic ammonothermal process, which utilizes supercritical ammonia with alkali metal mineralizers. Transition metal nitride such as vanadium nitride, molybdenum nitride, titanium nitride, nickel nitride, neodymium nitride, iron nitride, etc. can be synthesized in supercritical ammonia with reducing mineralizers such as potassium, sodium, lithium, magnesium, calcium, and aluminum. Since supercritical ammonia has characteristics of both gas and liquid, it can over complicated fine structure or fine particles.
    Type: Application
    Filed: June 15, 2012
    Publication date: December 27, 2012
    Applicant: SIXPOINT MATERIALS, INC.
    Inventor: Tadao HASHIMOTO
  • Publication number: 20120327561
    Abstract: An integrated capacitor assembly that contains at least two solid electrolytic capacitor elements electrically connected to common anode and cathode terminations is provided. The capacitor elements contain an anode, a dielectric coating overlying the anode that is formed by anodic oxidation, and a conductive polymer solid electrolyte overlying the dielectric layer. The capacitor elements are spaced apart from each other a certain distance such that a resinous material can fill the space between the elements. In this manner, the present inventors believe that the resinous material can limit the expansion of the conductive polymer layer to such an extent that it does not substantially delaminate from the capacitor element. In addition to possessing mechanical stability, the capacitor assembly also possesses a combination of good electrical properties, such as low ESR, high capacitance, and a high dielectric breakdown voltage.
    Type: Application
    Filed: August 30, 2012
    Publication date: December 27, 2012
    Applicant: AVX CORPORATION
    Inventors: Jan Petrzilek, Miloslav Uher, Lotfi Djebara
  • Patent number: 8339770
    Abstract: A capacitor having a high degree of electric strength, a high electrostatic capacity, and a low ESR, which can be readily downsized, is provided. The capacitor according to the present invention includes an anode made of porous valve metal, a dielectric layer formed by oxidizing the surface of the anode, and a solid electrolyte layer formed on the surface of the dielectric layer. The solid electrolyte layer includes a ? conjugated conductive polymer, a polyanion, and an ion-conductive compound.
    Type: Grant
    Filed: February 21, 2007
    Date of Patent: December 25, 2012
    Assignee: Shin-Etsu Polymer Co., Ltd.
    Inventors: Kazuyoshi Yoshida, Tailu Ning, Hironao Fujiki, Mitsuaki Negishi
  • Publication number: 20120320492
    Abstract: An apparatus including first and second electrodes separated by an electrolyte, at least one of the first and second electrodes including an actuating substrate configured to undergo reversible deformation during actuation, wherein reversible deformation of the actuating substrate causes a decrease in the internal resistance of the apparatus.
    Type: Application
    Filed: June 15, 2011
    Publication date: December 20, 2012
    Inventors: Zoran RADIVOJEVIC, Di WEI, Samiul HAQUE, Piers ANDREW
  • Patent number: 8333810
    Abstract: A supercapacitor system, including (i) first and second, spaced apart planar collectors, (ii) first and second arrays of multi-wall carbon nanotube (MWCNT) towers or single wall carbon nanotube (SWCNT) towers, serving as electrodes, that extend between the first and second collectors where the nanotube towers are grown directly on the collector surfaces without deposition of a catalyst and without deposition of a binder material on the collector surfaces, and (iii) a porous separator module having a transverse area that is substantially the same as the transverse area of at least one electrode, where (iv) at least one nanotube tower is functionalized to permit or encourage the tower to behave as a hydrophilic structure, with increased surface wettability.
    Type: Grant
    Filed: March 5, 2009
    Date of Patent: December 18, 2012
    Assignee: The United States of America as Represented by the Administrator of the National Aeronautics & Space Administration (NASA)
    Inventor: Meyya Meyyappan
  • Publication number: 20120314338
    Abstract: In a multilayer capacitor 1, burned layers 17A, 17B are formed so as to cover all of lead conductors 12A, 12B drawn from inner electrodes 6A, 6B to end faces of a multilayer body 2. This can keep a plating solution from infiltrating onto the inner electrodes 6A, 6B when forming plating layers 18A, 18B and prevent insulation failures from occurring. Since the burned layers 17A, 17B cover a part of dummy electrodes 13C, 13F, 13G, 13H, the area of the burned layers 17A, 17B can be suppressed. This can inhibit excessive stresses from occurring in the burned layers 17A, 17B and thus can prevent cracks from being generated by stresses in the burned layers 17A, 17B.
    Type: Application
    Filed: June 5, 2012
    Publication date: December 13, 2012
    Applicant: TDK CORPORATION
    Inventor: Masaaki TOGASHI
  • Publication number: 20120311833
    Abstract: The present invention provides a socket by which a capacitor element can be produced without causing contamination of chemical conversion treatment liquid or semiconductor layer forming liquid even if the chemical conversion treatment liquid or the semiconductor layer forming liquid has a corrosive property, and a lead wire of a positive electrode can be stably retained even if diameters of the lead wires are difference. The socket (1) of the present invention is provided with a conductive socket body portion (2) having an insertion port, a resin insulation portion (5) covering a part of the socket body portion (2) so as not to close an insertion port (37), and a resin coating portion (3) coating at least the insertion portion (37) of the socket body portion (2).
    Type: Application
    Filed: December 13, 2010
    Publication date: December 13, 2012
    Applicant: SHOWA DENKO K.K.
    Inventor: Kazumi Naito
  • Patent number: 8325466
    Abstract: A solid electrolytic capacitor includes a capacitor element from which an anode lead projects forward and having a surface on which a cathode layer is formed, an exterior resin covering the capacitor element, and anode and cathode terminals including, respectively, an anode and cathode terminal surfaces which are exposed from a bottom surface of the exterior resin. The anode terminal is formed from one metal plate, and includes a terminal part forming the anode terminal surface, a folded part folded back at a side edge of the terminal part and arranged over a top surface of the terminal part, and an upright part bent vertically to the top surface of the terminal part at a front edge or a rear edge of a tip end part of the folded part. A tip end part of the anode lead is electrically connected to a tip end of the upright part.
    Type: Grant
    Filed: October 19, 2009
    Date of Patent: December 4, 2012
    Assignee: SANYO Electric Co., Ltd.
    Inventors: Eizo Fujii, Kazuhiro Kato, Hiroya Nishimoto, Shoji Umeda, Koji Tezuka
  • Patent number: 8323361
    Abstract: A capacitor, and method of making a capacitor, is provided wherein the capacitor has exceptionally high break down voltage. The capacitor has a tantalum anode with an anode wire attached there to. A dielectric film is on the tantalum anode. A conductive polymer is on the dielectric film. An anode lead is in electrical contact with the anode wire. A cathode lead is in electrical contact with the conductive polymer and the capacitor has a break down voltage of at least 60 V.
    Type: Grant
    Filed: June 22, 2011
    Date of Patent: December 4, 2012
    Assignee: Kemet Electronics Corporation
    Inventors: Yuri Freeman, Jake Yongjian Qiu, Steven C. Hussey, Philip M. Lessner, Yongjian Qiu
  • Publication number: 20120297594
    Abstract: A method of manufacturing a chip-type electric double layer capacitor, including: forming a lower case having an opened housing space and first and second external terminals buried therein, the first and second external terminals having first surfaces exposed to the housing space, respectively, and second surfaces exposed to an outer region of the lower case, respectively; mounting an electric double layer capacitor cell in the housing space such that the electric double layer capacitor cell is electrically connected to the first surfaces of the first and second external terminals exposed to the housing space; and mounting an upper cap on the lower case so as to cover the housing space.
    Type: Application
    Filed: August 7, 2012
    Publication date: November 29, 2012
    Applicant: SAMSUNG ELECTRO-MECHANICS CO., LTD.
    Inventors: Sang Kyun Lee, Chang Ryul Jung, Sung Ho Lee, Dong Sup Park, Yeong Su Cho, Hyun Chul Jung