Condenser Or Capacitor Patents (Class 427/79)
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Publication number: 20110027649Abstract: The present invention provides a positive electrode (30) for lithium secondary batteries, including: a barrier layer, having a conductive material and at least one type of water-insoluble polymer that is soluble in organic solvents but insoluble in water, as a binder; and a positive electrode active material layer, being a positive electrode active material layer (35) stacked on the barrier layer, and having a positive electrode active material and at least one type of aqueous polymer that is insoluble in organic solvents but soluble or dispersible in water, as a binder. A content of the water-insoluble polymer in the barrier layer is 55 to 85 mass % with respect to 100 mass % of a total amount of the conductive material plus the water-insoluble polymer.Type: ApplicationFiled: March 23, 2009Publication date: February 3, 2011Inventor: Takeshi Abe
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Publication number: 20110020603Abstract: Disclosed is a capacitor which has a high capacitance and a low equivalent series resistance. The capacitor includes a conductive base material composed of a plating film having a specific surface area of 100 mm2/mm3 or more, a dielectric film on a surface of the conductive base material, and an opposed conductor formed so as to be opposed to the conductive base material with the dielectric film interposed therebetween. The plating film constituting the conductive base material is formed by electrolytic plating or electroless plating, and may have a porous form, wire-like form or broccoli-like form.Type: ApplicationFiled: October 4, 2010Publication date: January 27, 2011Applicant: MURATA MANUFACTURING CO., LTD.Inventors: Tatsuo KUNISHI, Junichi Saito, Daisuke Megumi, Yoshinori Ueda, Yasuaki Kainuma, Mikiya Kobayashi, Shinji Otani
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Publication number: 20110019340Abstract: An electrically conductive polymer composition has high electrical conductivity, excellent water resistance, high density, and excellent smoothness. Also disclosed is a solid electrolyte capacitor which is prevented from the reduction in electrical conductivity, has low ESR, and also has excellent reliability. Further disclosed is a method for producing the solid electrolyte capacitor. The electrically conductive polymer composition is produced by removing a dispersion medium from an electrically conductive polymer suspension, wherein the electrically conductive polymer suspension includes: an electrically conductive polymer material including a dopant composed of a polyacid or a salt thereof and an electrically conductive polymer; at least one compound (A) selected from erythritol, xylitol and pentaerythritol; and the dispersion medium.Type: ApplicationFiled: April 10, 2009Publication date: January 27, 2011Applicant: NEC TOKIN CORPORATIONInventors: Tomoki Nobuta, Ryuta Kobayakawa, Naoki Takahashi, Yasuhisa Sugawara, Satoshi Suzuki
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Publication number: 20110002081Abstract: A method that employs a novel combination of conventional fabrication techniques provides a ceramic short-resistant capacitor that is bendable and/or shapeable to provide a multiple layer capacitor that is extremely compact and amenable to desirable geometries. The method allows thinner and more flexible ceramic capacitors to be made. The method includes forming a first thin metal layer on a substrate; depositing a thin, ceramic dielectric layer over the metal layer; depositing a second thin metal layer over the dielectric layer to form a capacitor exhibiting a benign failure mode; and separating the capacitor from the substrate.Type: ApplicationFiled: July 6, 2009Publication date: January 6, 2011Applicant: DELPHI TECHNOLOGIES, INC.Inventors: RALPH S. TAYLOR, JOHN D. MYERS, WILLIAM J. BANEY
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Publication number: 20110000875Abstract: A method of forming a capacitor includes depositing a dielectric metal oxide layer of a first phase to a thickness no greater than 75 Angstroms over an inner conductive capacitor electrode material. The first phase dielectric metal oxide layer has a k of at least 15. Conductive RuO2 is deposited over and into physical contact with the dielectric metal oxide layer. Then, the RuO2 and the dielectric metal oxide layer are annealed at a temperature below 500° C. The RuO2 in physical contact with the dielectric metal oxide during the annealing facilitates a change of the dielectric metal oxide layer from the first phase to a second crystalline phase having a higher k than the first phase. The annealed dielectric metal oxide layer is incorporated into a capacitor dielectric region of a capacitor construction. Other implementations are disclosed.Type: ApplicationFiled: July 2, 2009Publication date: January 6, 2011Inventors: Vassil Antonov, Vishwanath Bhat
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Patent number: 7862852Abstract: There is provided a method of manufacturing a tantalum condenser, in which a high-performing tantalum condenser is manufactured through a more simplified and higher-efficient process using simpler and economical equipment. The method of manufacturing a tantalum condenser including: preparing a tantalum pellet by sintering a tantalum powder; oxidizing the tantalum pellet to form a dielectric layer on a surface thereof; forming a polymer layer on the tantalum pellet having the dielectric layer formed on the surface thereof; and immersing the tantalum pellet having the polymer layer formed on the surface thereof in a polymer suspension to be subjected to chemical reformation.Type: GrantFiled: January 10, 2008Date of Patent: January 4, 2011Assignee: Samsung Electro-Mechanics Co., Ltd.Inventor: Gi Ahn Lee
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Publication number: 20100320520Abstract: To make it possible to significantly suppress the leakage current in a semiconductor device having a capacitor structure using a dielectric film. There is provided a composite oxide dielectric which is mainly composed of Zr, Al and O, and which has a composition ratio of Zr and Al in a range of (1?x):x where 0.01?x?0.15, and has a crystal structure. When the dielectric is set to have the Al composition in the above described range and is crystallized, the relative dielectric constant of the dielectric can be significantly increased. When the dielectric is used as a dielectric film of a capacitor of a semiconductor device, the leakage current of the capacitor can be significantly reduced.Type: ApplicationFiled: February 4, 2008Publication date: December 23, 2010Inventors: Takashi Nakagawa, Toru Tatsumi, Nobuyuki Ikarashi, Makiko Oshida
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Publication number: 20100314040Abstract: An example method of fabricating a metamaterial comprises providing a first metamaterial layer, the first metamaterial layer including a first plurality of conducting patterns, such as electrically coupled resonators. A second metamaterial layer is then formed, including a second plurality of conducting patterns, to form a multilayer metamaterial. Positional alignment of the first and second plurality of conducting patterns can be achieved relative to the same fiducial mark, which may be associated with the first metamaterial layer, for example supported by a first substrate or on an alignment layer that is attached to the first substrate.Type: ApplicationFiled: June 10, 2009Publication date: December 16, 2010Applicants: Toyota Motor Engineering & Manufacturing North America, Inc., Duke UniversityInventors: Talmage Tyler, II, Nan Marie Jokerst, David R. Smith, Vinh N. Nguyen, Jungsang Kim, Serdar H. Yonak
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Publication number: 20100316793Abstract: Capacitors and methods of forming capacitors are disclosed, and which include an inner conductive metal capacitor electrode and an outer conductive metal capacitor electrode. A capacitor dielectric region is received between the inner and the outer conductive metal capacitor electrodes and has a thickness no greater than 150 Angstroms. Various combinations of materials of thicknesses and relationships relative one another are disclosed which enables and results in the dielectric region having a dielectric constant k of at least 35 yet leakage current no greater than 1×10?7 amps/cm2 at from ?1.1V to +1.1V.Type: ApplicationFiled: June 12, 2009Publication date: December 16, 2010Inventors: Rishikesh Krishnan, John Smythe, Vishwanath Bhat, Noel Rocklein, Bhaskar Srinivasan, Jef Hall, Chris Carlson
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Publication number: 20100302705Abstract: Some embodiments include methods of forming capacitors. A metal oxide mixture may be formed over a first capacitor electrode. The metal oxide mixture may have a continuous concentration gradient of a second component relative to a first component. The continuous concentration gradient may correspond to a decreasing concentration of the second component as a distance from the first capacitor electrode increases. The first component may be selected from the group consisting of zirconium oxide, hafnium oxide and mixtures thereof; and the second component may be selected from the group consisting of niobium oxide, titanium oxide, strontium oxide and mixtures thereof. A second capacitor electrode may be formed over the first capacitor electrode. Some embodiments include capacitors that contain at least one metal oxide mixture having a continuous concentration gradient of the above-described second component relative to the above-described first component.Type: ApplicationFiled: June 2, 2009Publication date: December 2, 2010Inventors: Vassil Antonov, Vishwanath Bhat, Chris Carlson
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Publication number: 20100302706Abstract: The present invention provides a method for fabricating a ceramic film on a copper foil. The method comprises applying a layer of a sol-gel composition onto a copper foil. The sol-gel composition comprises a precursor of a ceramic material suspended in 2-methoxyethanol. The layer of sol-gel is then dried at a temperature up to about 250° C. The dried layer is then pyrolyzed at a temperature in the range of about 300 to about 450° C. to form a ceramic film from the ceramic precursor. The ceramic film is then crystallized at a temperature in the range of about 600 to about 750° C. The drying, pyrolyzing and crystallizing are performed under a flowing stream of an inert gas. In some embodiments an additional layer of the sol-gel composition is applied onto the ceramic film and the drying, pyrolyzing and crystallizing steps are repeated for the additional layer to build up a thicker ceramic layer on the copper foil. The process can be repeated one or more times if desired.Type: ApplicationFiled: May 25, 2010Publication date: December 2, 2010Applicant: UCHICAGO ARGONNE, LLCInventors: Beihai MA, Manoj NARAYANAN, Stephen E. DORRIS, Uthamalingam BALACHANDRAN
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Publication number: 20100297337Abstract: The present invention relates to a process for the preparation of a coating displaying increased conductivity which contains at least one conductive polymer derived from optionally substituted thiophene, optionally together with at least one further conductive polymer, in particular polyaniline, in which process firstly an aqueous or organic dispersion or solution which contains the at least one conductive polymer is applied to a substrate; thereafter the forming or formed layer is dried; and at least one polar solvent is brought into contact with the formed or forming layer during or after the drying. The invention also relates to the preparation of an article in which a coating according to the present invention is applied to the surface of a transparent substrate. Furthermore, the present invention relates to the use of a polar solvent for increasing the conductivity of a coating containing at least one conductive polymer derived from optionally substituted thiophene.Type: ApplicationFiled: December 12, 2008Publication date: November 25, 2010Applicant: ORMECON GMBHInventor: Bernhard Wessling
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Publication number: 20100294549Abstract: The disclosure relates to a method for making multi-material three-dimensional components providing a mechanical link between thin layers. To this end, the disclosure provides a method for making a multi-material three-dimensional component that includes at least first and second materials. The method includes making at least two superimposed printed layers along discrete space routes of a printing travel, the printed layers being made by the contactless deposition of localised impacts of printing droplets, and a homogenous printed layer includes at least the first material, with the second material being excluded, while at least one mixed printed layer includes the first material, and at least the second material.Type: ApplicationFiled: November 12, 2008Publication date: November 25, 2010Applicants: EROFARAD - EFD, CERADROPInventors: Henri Laville, Arnaud Langle, Rémi Noguéra
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Publication number: 20100290172Abstract: A method for manufacturing a laminated electronic component includes the steps of preparing a component main body having a laminated structure, the component main body including a plurality of internal electrodes formed therein, and each of the internal electrodes being partially exposed on an external surface of the component main body, and forming an external terminal electrode on the external surface of the component main body such that the external terminal electrode is electrically connected to the internal electrodes. The step of forming the external terminal electrode includes the steps of forming a first plating layer on exposed surfaces of the internal electrodes of the component main body, applying a water repellant at least on a surface of the first plating layer and on a section in the external surface of the component main body at which an end edge of the first plating layer is located, and then forming a second plating layer on the first plating layer having the water repellant applied thereon.Type: ApplicationFiled: May 17, 2010Publication date: November 18, 2010Applicant: MURATA MANUFACTURING CO., LTD.Inventors: Akihiro MOTOKI, Makoto OGAWA, Kenichi KAWASAKI, Shunsuke TAKEUCHI
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Patent number: 7832069Abstract: A capacitor device includes a capacitor Q constituted by a lower electrode (12) formed on a substrate (10), a dielectric film (14), and an upper electrode (16); an insulating film (18) covering the capacitor Q; a first contact hole (18a) formed in the insulating film (18) on a connection portion (16a) of the upper electrode (16); an electrode pad (20) for preventing a diffusion of solder, formed in the first contact hole (18a); and a solder bump (22) electrically connected to the electrode pad (20), and the upper electrode (16) has a protrusion portion (16a) protruding from the dielectric film (14), and is connected to the first contact hole (18a) on the protrusion portion (16a).Type: GrantFiled: April 27, 2007Date of Patent: November 16, 2010Assignee: Fujitsu LimitedInventors: Takeshi Shioga, John David Baniecki, Kazuaki Kurihara
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Publication number: 20100284123Abstract: The present invention describes systems and methods for fabricating high-density capacitors. An exemplary embodiment of the present invention provides a method for fabricating a high-density capacitor system including the steps of providing a substrate and depositing a nanoelectrode particulate paste layer onto the substrate. The method for fabricating a high-density capacitor system further includes sintering the nanoelectrode particulate paste layer to form a bottom electrode. Additionally, the method for fabricating a high-density capacitor system includes depositing a dielectric material onto the bottom electrode with an atomic layer deposition process. Furthermore, the method for fabricating a high-density capacitor system includes depositing a conductive material on the dielectric material to form a top electrode.Type: ApplicationFiled: May 5, 2009Publication date: November 11, 2010Inventors: MarkondeyaRaj Pulugurtha, Andreas Fenner, Anna Malin, Kanika Sethi, Himani Sharma, Dasharatham Janagama Goud, Rao Tummala
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Publication number: 20100285233Abstract: A method for fabricating electronic devices includes the steps of 1) printing a multi-layer electronic device on a silicone-based hard coating on a substrate, and 2) removing the device from the substrate. The silicone-based hard coating is an Cabrasion resistant coating with hardness ranging from 1 to 10 gigaPascals.Type: ApplicationFiled: December 18, 2008Publication date: November 11, 2010Inventors: Michael Brasseur, Karen Hueston, James Tonge
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Publication number: 20100282496Abstract: The present invention relates to freestanding carbon nanotube paper comprising purified carbon nanotubes, where the purified carbon nanotubes form the freestanding carbon nanotube paper and carbon microparticles embedded in and/or present on a surface of the carbon nanotube paper. The invention also relates to a lithium ion battery, capacitor, supercapacitor, battery/capacitor, and fuel cell containing the freestanding carbon nanotube paper as an electrode. Also disclosed is a method of making a freestanding carbon nanotube paper. This method involves providing purified carbon nanotubes, contacting the purified carbon nanotubes with an organic solvent under conditions effective to form a dispersion comprising the purified carbon nanotubes. The dispersion is formed into a carbon nanotube paper and carbon microparticles are incorporated with the purified carbon nanotubes.Type: ApplicationFiled: September 29, 2008Publication date: November 11, 2010Applicant: ROCHESTER INSTITUTE OF TECHNOLOGYInventors: Brian J. Landi, Ryne P. Raffaelle, Cory D. Cress
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Publication number: 20100284125Abstract: Provided is a method of manufacturing a nanowire capacitor including forming a lower metal layer on a substrate; growing conductive nanowires on the lower metal layer, the conductive nanowires including metal and transparent electrodes; depositing a dielectric layer on the lower metal layer including the grown conductive nanowires; growing dielectric nanowires on the deposited dielectric layer; and depositing an upper metal layer on the dielectric layer including the grown dielectric nanowires.Type: ApplicationFiled: October 19, 2007Publication date: November 11, 2010Applicant: SAMSUNG ELECTRO-MECHANICS CO., LTD.Inventors: Won Ha MOON, Chang Hwan CHOI, Chul Tack LIM, Young Nam HWANG
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Publication number: 20100279106Abstract: Electronic devices prepared from nanoscale powders are described. Methods for utilizing nanoscale powders and related nanotechnology to prepare capacitors, inductors, resistors, thermistors, varistors, filters, arrays, interconnects, optical components, batteries, fuel cells, sensors and other products are discussed.Type: ApplicationFiled: December 11, 2007Publication date: November 4, 2010Inventors: Tapesh Yadav, Hongxing Hu
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Publication number: 20100270508Abstract: Zirconium precursors of the formulae Such precursors are liquids at room temperature, and can be employed in vapor deposition processes such as ALD to form zirconium-containing films, e.g., high k dielectric films on microelectronic device substrates. The zirconium precursors can be stabilized in such vapor deposition processes by thermal stabilization amine additives.Type: ApplicationFiled: December 21, 2009Publication date: October 28, 2010Applicant: ADVANCED TECHNOLOGY MATERIALS, INC.Inventors: Chongying Xu, Thomas M. Cameron, Bryan C. Hendrix, John N. Gregg
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Publication number: 20100271748Abstract: Provided are an embedded capacitor, an embedded capacitor sheet using the embedded capacitor, and a method of manufacturing the same that may increase a surface area to thereby increase a capacity for each unit area and may provide an embedded capacitor in a sheet to thereby readily lay the embedded capacitor on an embedded printed circuit board. The embedded capacitor may include: a common electrode member 11 including a plurality of grooves 11a; a sealing dielectric layer 12 being formed by sealing a nano dielectric powder with a high dielectric constant in the plurality of grooves 11a formed in the common electrode member 11; a buffer dielectric layer 13 sealing and smoothing an uneven portion of the sealing dielectric layer 12 by applying a paste or a slurry including epoxy of 20 Vol % through 80 Vol % and dielectric powder of 20 Vol % through 80 Vol % with respect to the sealing dielectric layer 12; and an individual electrode member 14 being formed on the buffer dielectric layer 13.Type: ApplicationFiled: May 18, 2009Publication date: October 28, 2010Inventors: Jung Rag Yoon, Kyung Min Lee, Jeong Woo Han
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Publication number: 20100266751Abstract: This invention concerns a process for producing oxide thin film on a substrate by an ALD type process. According to the process, alternating vapour-phase pulses of at least one metal source material, and at least one oxygen source material are fed into a reaction space and contacted with the substrate. According to the invention, an yttrium source material and a zirconium source material are alternately used as the metal source material so as to form an yttrium-stabilised zirconium oxide (YSZ) thin film on a substrate.Type: ApplicationFiled: June 22, 2010Publication date: October 21, 2010Applicant: ASM International N.V.Inventor: Matti Putkonen
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Publication number: 20100266962Abstract: A method of forming a plurality of capacitors includes forming a plurality of individual capacitor electrodes using two masking steps. An earlier of the two masking steps is used to form an array of first openings over a plurality of storage node contacts. A later of the two masking steps is used to form an array of second openings received partially over and partially offset from the array of first openings. Overlapping portions of the first and second openings are received over the storage node contacts. After both of the two masking steps, conductive material of the individual capacitor electrodes is deposited into the overlapping portions of each of the first and second openings. The individual capacitor electrodes are incorporated into a plurality of capacitors. Other aspects and implementations are contemplated.Type: ApplicationFiled: June 25, 2010Publication date: October 21, 2010Applicant: MICRON TECHNOLOGY, INC.Inventor: Fred Fishburn
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Patent number: 7815965Abstract: A microdeposition system microdeposits droplets of fluid material to define a feature pattern on a substrate. The feature pattern for the substrate is defined. A mask is created for the feature pattern that reduces a density of defects that occur due to a malfunctioning nozzle of the microdeposition head. The droplets of fluid material are microdeposited onto the substrate based on the mask to define sub-features of the feature pattern. One of the nozzles of the microdeposition head is assigned to each of the sub-features in the feature pattern. The nozzles may be assigned randomly or using other functions. The assigned nozzles in the mask are assigned to one of a plurality of passes of the microdeposition head.Type: GrantFiled: September 18, 2009Date of Patent: October 19, 2010Assignee: Ulvac, Inc.Inventors: Charles O. Edwards, David Albertalli
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Publication number: 20100258903Abstract: Strontium ruthenium oxide provides an effective interface between a ruthenium conductor and a strontium titanium oxide dielectric. Formation of the strontium ruthenium oxide includes the use of atomic layer deposition to form strontium oxide and subsequent annealing of the strontium oxide to form the strontium ruthenium oxide. A first atomic layer deposition of strontium oxide is preformed using water as an oxygen source, followed by a subsequent atomic layer deposition of strontium oxide using ozone as an oxygen source.Type: ApplicationFiled: April 10, 2009Publication date: October 14, 2010Inventors: Bhaskar Srinivasan, Vassil Antonov, John Smythe
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Publication number: 20100255652Abstract: According to the invention, a Ti film is formed on a substrate and is annealed at the temperatures of 350° C.-400° C. under oxidative environment, so that a TiO2 film having a rutile crystal structure is formed. Since the TiO2 film having a rutile crystal structure has a high dielectric constant, it is useful for a capacitive insulating film for a capacitor.Type: ApplicationFiled: April 1, 2010Publication date: October 7, 2010Applicant: ELPIDA MEMORY, INC.Inventor: Masami TANIOKU
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Publication number: 20100255217Abstract: A method for forming a capacitor dielectric includes depositing a tantalum oxide layer over a substrate, performing a post-treatment on the tantalum oxide layer to provide the tantalum oxide layer with a tetragonal phase, and depositing a zirconium oxide layer over the tantalum oxide layer such that the zirconium oxide layer has a tetragonal phase.Type: ApplicationFiled: June 14, 2010Publication date: October 7, 2010Applicant: Hynix Semiconductor Inc.Inventor: Jong-Bum PARK
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Publication number: 20100254067Abstract: A method of manufacturing electronic ceramic components, especially multilayer ceramic components, by applying a green ceramic layer through chemical coating methods on a mesh electrode of at least one sheet of conductive mesh to achieve extended ceramic layer thickness range, improved thermal conductivity, and improved mechanical strength of the components. The green ceramic coated mesh electrode can be wound up into a cylindrical format or stacked up into a multilayer format, then sintered into a multilayer component body. A counter electrode of an impregnated conductive substance or a deposited conductive layer is formed on the top of sintered ceramic layer separately with the sintering of the ceramic active layer to eliminate the internal stresses caused by conventional co-firing process.Type: ApplicationFiled: April 4, 2009Publication date: October 7, 2010Inventor: Frank Wei
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Publication number: 20100246088Abstract: A capacitor manufacturing method provides variable capacitors whose capacitances remain stable under the influence of temperature change. Such a variable capacitor includes a fixed electrode, a movable electrode film facing the fixed electrode, and an anchor portion that provides partial connection between the fixed electrode and the movable electrode film. For making this variable capacitor, a first electrode is formed to serve as the fixed electrode. Then, an anchor portion is formed on the fixed electrode, and a sacrifice film is formed to cover the fixed electrode but partially expose the anchor portion. A second electrode is formed on the sacrifice film to serve as the movable electrode film, bonded to the anchor portion. Finally, the sacrifice film is removed.Type: ApplicationFiled: April 5, 2010Publication date: September 30, 2010Applicant: Fujitsu LimitedInventors: Takeaki Shimanouchi, Masahiko Imai, Satoshi Ueda
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Patent number: 7803421Abstract: An element forming an electronic component has a first face and a second face facing each other, and a third face adjacent to each of the first face and the second face. A method of forming an external electrode of the electronic component involves a pre-formation step, first to third formation steps, and an electrode formation step. The pre-formation step is to apply a conductive paste onto the third face and to evaporate at least a part of a liquid contained in the applied conductive paste, to form a precoat portion expected to become a part of a third electrode portion. The first formation step is to apply the conductive paste from a direction opposite to the first face, onto the first face to form a first electrode portion. The second formation step is to apply the conductive paste from a direction opposite to the second face, onto the second face to form a second electrode portion.Type: GrantFiled: December 11, 2006Date of Patent: September 28, 2010Assignee: TDK CorporationInventors: Ko Onodera, Satoshi Kurimoto, Yoji Tozawa, Shirou Ootsuki
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Publication number: 20100238607Abstract: An electrode for a super-capacitor, a super-capacitor including the electrode, and a method of preparing the electrode in which the electrode includes a conductive substrate; metal nano structures formed on the conductive substrate; and a metal oxide coated on the metal nano structures. The electrode for the super-capacitor increases the capacitance of the super-capacitor.Type: ApplicationFiled: February 19, 2010Publication date: September 23, 2010Applicant: Samsung Electronics Co., Ltd.Inventors: Jin-hwan Park, Sung-ho Park, Tae-yeon Shin
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Patent number: 7797814Abstract: A process for the manufacture of small sensors with reproducible surfaces, including electrochemical sensors. One process includes forming channels in the surface of a substrate and disposing a conductive material in the channels to form an electrode. The conductive material can also be formed on the substrate by other impact and non-impact methods. In a preferred embodiment, the method includes cutting the substrate to form a sensor having a connector portion and a transcutaneous portion, the two portions having edges that define one continuous straight line.Type: GrantFiled: October 30, 2007Date of Patent: September 21, 2010Assignee: Abbott Diabetes Care Inc.Inventors: James Say, Michael F. Tomasco, Adam Heller, Yoram Gal, Behrad Aria, Ephraim Heller, Phillip John Plante, Mark S. Vreeke
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Publication number: 20100230149Abstract: A method of making dense dielectrics layers via chemical solution deposition by adding inorganic glass fluxed material to high dielectric constant compositions, depositing the resultant mixture onto a substrate and annealing the substrate at temperatures between the softening point of the inorganic glass flux and the melting point of the substrate. A method of making a capacitor comprising a dense dielectric layer.Type: ApplicationFiled: June 15, 2006Publication date: September 16, 2010Inventors: William Borland, Seigi Suh, Jon-Paul Maria, Jon Fredrick Ihlefeld, Ian Burn
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Publication number: 20100233359Abstract: As for electrode pads for a semiconductor integrated circuit element, some of electrode pads for signal transmission are coupled to Ti films. Others of the electrode pads for signal transmission are coupled to electrode pads through wiring routed in multilayer wiring. Electrode pads for power supply are coupled to electrode pads to which power lines at potentials different from each other are coupled through wiring. The electrode pads are also coupled to Al foils (anodes). Electrode pads for grounding are coupled to electrode pads to which ground lines are coupled through wiring. The electrode pads are also coupled to conductive polymer films (cathodes).Type: ApplicationFiled: May 19, 2010Publication date: September 16, 2010Applicant: FUJITSU LIMITEDInventors: Takeshi SHIOGA, Masataka MIZUKOSHI, Kazuaki KURIHARA
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Publication number: 20100214719Abstract: The present invention provides a capacitor including: a bottom electrode; a first dielectric layer formed on the bottom electrode; a conductive polymer layer formed on the first dielectric layer; a second dielectric layer formed on the conductive polymer layer; and a top electrode formed on the second dielectric layer, and a method of manufacturing the same.Type: ApplicationFiled: March 30, 2009Publication date: August 26, 2010Applicant: Samsung Electro-Mechanics Co., Ltd.Inventors: Woon Chun Kim, Sung Yi, Soon Gyu Yim
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Publication number: 20100209595Abstract: In a method of forming a strontium ruthenate thin film using water vapor as an oxidizing agent, a strontium source and a ruthenium source are used. The strontium source includes a cyclopentadienyl (Cp) ligand, an alkoxide ligand, an alkyl ligand, an amide ligand or a halide ligand, and the ruthenium source includes a beta diketonate ligand.Type: ApplicationFiled: February 19, 2010Publication date: August 19, 2010Inventors: Oh-Seong Kwon, Kyu-Ho Cho, Jung-Hee Chung, Jin-Yong Kim, Wan-Don Kim, Youn-Soo Kim, Yong-Suk Tak
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Publication number: 20100209596Abstract: A novel lead zirconium titanate (PZT) material having unique properties and application for PZT thin film capacitors and ferroelectric capacitor structures, e.g., FeRAMs, employing such thin film material. The PZT material is scalable, being dimensionally scalable, pulse length scalable and/or E-field scalable in character, and is useful for ferroelectric capacitors over a wide range of thicknesses, e.g., from about 20 nanometers to about 150 nanometers, and a range of lateral dimensions extending to as low as 0.15 ?m. Corresponding capacitor areas (i.e., lateral scaling) in a preferred embodiment are in the range of from about 104 to about 10?2 ?m2. The scalable PZT material of the invention may be formed by liquid delivery MOCVD, without PZT film modification techniques such as acceptor doping or use of film modifiers (e.g., Nb, Ta, La, Sr, Ca and the like).Type: ApplicationFiled: April 27, 2010Publication date: August 19, 2010Applicant: Advanced Technology Materials, Inc.Inventors: Peter C. Van Buskirk, Jeffrey F. Roeder, Steven M. Bilodeau, Michael W. Russell, Stephen T. Johnston, Daneil J. Vestyck, Thomas H. Baum
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Publication number: 20100203391Abstract: A mesoporous carbon material formed on an electrode surface in an energy storage device, and a method of forming the same are disclosed. The mesoporous carbon material acts as a high surface area ion intercalation medium for the energy storage device, and is made up of CVD-deposited carbon fullerene “onions” and carbon nanotubes (CNTs) that are interconnected in a fullerene/CNT hybrid matrix. The fullerene/CNT hybrid matrix is a high porosity material that is capable of retaining lithium ions in concentrations useful for storing significant quantities of electrical energy. The method, according to one embodiment, includes vaporizing a high molecular weight hydrocarbon precursor and directing the vapor onto a conductive substrate to form a mesoporous carbon material thereon.Type: ApplicationFiled: January 29, 2010Publication date: August 12, 2010Applicant: APPLIED MATERIALS, INC.Inventors: Sergey D. Lopatin, Robert Z. Bachrach, Dmitri A. Brevnov, Christopher Lazik, Miao Jin, Yuri S. Uritsky
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Patent number: 7773365Abstract: One embodiment of a dielectric material may include a metal containing cation and a polyatomic anion.Type: GrantFiled: April 30, 2004Date of Patent: August 10, 2010Assignee: Hewlett-Packard Development Company, L.P.Inventors: Gregory S. Herman, Peter Mardilovich, Douglas Keszler, Jeremy Anderson
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Publication number: 20100195261Abstract: Devices for storing energy at a high density are described. The devices include an electrode preformed to present a high exposed area onto which a dielectric is formed. The dielectric material has a high dielectric constant (high relative permittivity) and a high breakdown voltage, allowing a high voltage difference between paired electrodes to effect a high stored energy density.Type: ApplicationFiled: February 2, 2010Publication date: August 5, 2010Applicant: Space Charge, LLCInventors: Daniel C. Sweeney, John B. Read
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Publication number: 20100196592Abstract: In a method of fabricating a capacitor, a lower electrode is formed, and a dielectric layer is formed on the lower electrode. An upper electrode is foamed on the dielectric layer opposite the lower electrode. A low-temperature capping layer is formed on the upper electrode at a temperature of less than about 300° C. Related devices and fabrication methods are also discussed.Type: ApplicationFiled: February 3, 2010Publication date: August 5, 2010Inventors: Wan-Don Kim, Kyu-Ho Cho, Jin-Yong Kim, Jae-Hyoung Choi, Jae-Soon Lim, Oh-Seong Kwon, Beom-Seok Kim, Yong-Suk Tak
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Publication number: 20100188799Abstract: Multilayer capacitors incorporate both low inductance (ESL) and controlled Equivalent Series Resistance (ESR) features into a cost-effective unitary device. Internal electrode patterns generally include one or more pairs of mother electrodes adapted for external connection (e.g., to a circuit, another electrical component, circuit board, or other mounting environment), and multiple pairs of daughter electrodes adapted only for internal connection to other electrodes (e.g., other daughter electrodes and/or selected mother electrodes) without direct connection to an external circuit. Mother and daughter electrodes are interdigitated with electrode tab features, where daughter electrodes have internal-connection tabs, and mother electrodes have both internal-connection tabs and circuit-connection tabs, all of which are connected to respective internal-connection or circuit-connection terminals.Type: ApplicationFiled: January 27, 2010Publication date: July 29, 2010Applicant: AVX CORPORATIONInventors: John L. Galvagni, Marianne Berolini, Andrew P. Ritter
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Publication number: 20100188802Abstract: A conductive composition comprises a ? conjugated conductive polymer, a dopant composed of polyanion, and at least one crosslinking site forming compound selected from (a) compounds having a glycidyl group and (b) compounds having a hydroxyl group and one selected from the group consisting of allyl, vinyl ether, methacryl, acryl, methacrylamide, and acrylamide groups. An antistatic coating material comprises a ? conjugated conductive polymer, polyanion, at least one crosslinking site forming compound selected form the above (a) and (b), and a solvent. An antistatic coating is formed by applying the above-mentioned antistatic coating material. In a capacitor comprising an anode composed of a valve metal porous body; a dielectric layer formed by oxidizing the surface of the anode; and a cathode formed on the dielectric layer, the cathode has a solid electrolyte layer formed by crosslinking complexes of a ? conjugated conductive polymer and a dopant composed of a polyanion.Type: ApplicationFiled: January 28, 2010Publication date: July 29, 2010Applicant: SHIN-ETSU POLYMER CO., LTD.Inventors: Kazuyoshi Yoshida, Tailu Ning, Yasushi Masahiro
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Publication number: 20100189881Abstract: A method of manufacturing a high surface area per unit weight carbon electrode includes providing a substrate, depositing a carbon-rich material on the substrate to form a film, and after the depositing, activating the carbon-rich material to increase the surface area of the film of carbon-rich material. Due to the activation process being after deposition, this method enables use of low cost carbon-rich material to form a carbon electrode in the capacitor. The electrode may be used in capacitors, ultracapacitors and lithium ion batteries. The substrate may be part of the electrode, or it may be sacrificial—being consumed during the activation process. The carbon-rich material may include any of carbonized material, carbon aerogel and metal oxides, such as manganese and ruthenium oxide. The activation may include exposing the carbon-rich material to carbon dioxide at elevated temperature, in the range of 300 to 900 degrees centigrade.Type: ApplicationFiled: January 27, 2009Publication date: July 29, 2010Applicant: Applied Materials, Inc.Inventor: Nag B. Patibandla
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Publication number: 20100187105Abstract: A method of fabricating an elastomeric structure, comprising: forming a first elastomeric layer on top of a first micromachined mold, the first micromachined mold having a first raised protrusion which forms a first recess extending along a bottom surface of the first elastomeric layer; forming a second elastomeric layer on top of a second micromachined mold, the second micromachined mold having a second raised protrusion which forms a second recess extending along a bottom surface of the second elastomeric layer; bonding the bottom surface of the second elastomeric layer onto a top surface of the first elastomeric layer such that a control channel forms in the second recess between the first and second elastomeric layers; and positioning the first elastomeric layer on top of a planar substrate such that a flow channel forms in the first recess between the first elastomeric layer and the planar substrate.Type: ApplicationFiled: September 9, 2009Publication date: July 29, 2010Applicant: California Institute of TechnologyInventors: Marc A. Unger, Hou-Pu Chou, Todd A. Thorsen, Axel Scherer, Stephen R. Quake
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Publication number: 20100183802Abstract: Disclosed is a method for producing a dispersion liquid of solid particulates, the method comprising subjecting a mixture liquid comprising charged particles, solid particles greater in average particle diameter than the charged particles, and a liquid medium to pulverization. Moreover, a method for producing an electrode and a method for producing an electric double layer capacitor using the aforementioned method.Type: ApplicationFiled: March 26, 2008Publication date: July 22, 2010Applicant: SUMITOMO CHEMICAL COMPANY, LIMITEDInventors: Hironori Eguchi, Taiichi Sakaya, Takumi Shibuta
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Publication number: 20100177493Abstract: Disclosed is a method for providing a protective film over a capacitor. The method includes the steps of providing a capacitor with a first leg, a second leg and a shell, spraying paint onto the shell so that the thickness of the paint over the shell is even, and drying the paint so that the paint is turned into a protective film over the shell.Type: ApplicationFiled: January 14, 2009Publication date: July 15, 2010Inventors: Ming-Hsi Tsou, Chia Pang Chen, Chin-Chang Lin
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Publication number: 20100178418Abstract: A method for manufacturing a bundle of fibers for use as a capacitor is disclosed. First and second fibers all having an electrically conductive fiber core and an electrically insulating cladding are provided and arranged in a bundle. The first end of the first fibers are arranged to protrude from a first end of the bundle, and the second ends of the second fibers are arranged to protrude from a second end of the bundle creating a plurality of first and second spaces defined by the protruding first and second ends of the first and second fibers and the non-protruding first and second ends of the second and first fibers respectively. The first and second spaces are filled with an electrically insulating material. First and second electrodes are provided that contact the fiber cores of the first and second fibers respectively so that an electric capacitance is established between the fiber cores of the first fibers and the fiber cores of the second fibers.Type: ApplicationFiled: June 25, 2009Publication date: July 15, 2010Inventor: Enis Tuncer
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Patent number: 7754382Abstract: The composite particle for an electrode in accordance with the present invention contains an electrode active material, a conductive auxiliary agent having an electronic conductivity, and an oxidizing/reducing agent. Therefore, this composite particle can construct an effective conductive network, and effectively provide so-called oxidizing/reducing capacity due to the oxidizing/reducing agent. Hence, when the composite particle for an electrode in accordance with the present invention is used as a constituent material of an electrode in an electrochemical device, the electrochemical device can realize a higher capacity.Type: GrantFiled: July 29, 2004Date of Patent: July 13, 2010Assignee: TDK CorporationInventors: Masato Kurihara, Tadashi Suzuki, Satoshi Maruyama, Atsushi Sano