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    • 1. 发明授权
    • Flat-shaped nonaqueous electrolyte battery
    • 扁平状非水电解质电池
    • US06689512B2
    • 2004-02-10
    • US10121297
    • 2002-04-11
    • Takashi KimuraTatsuya ShigenoKenichi Sano
    • Takashi KimuraTatsuya ShigenoKenichi Sano
    • H01M208
    • H01M2/0413H01M2/0222H01M4/134H01M10/052H01M10/0585H01M2010/4292
    • A flat-shaped nonaqueous electrolyte battery including a sealing plate, a metal container, a gasket interposed between the sealing plate and the metal container, and a negative electrode, a positive electrode and a nonaqueous electrolyte that are sealed by pressing inward an edge portion of an opening of the metal container, the sealing plate also serves as a positive electrode terminal, the metal container also serves as a negative electrode terminal, and a peripheral portion of the negative electrode is arranged between an inner bottom surface of the metal container and the gasket is disclosed. It is preferable that a lithium alloy or an oxide of an element that can be alloyed with lithium is used for the negative electrode, and it is preferable that a ratio of a capacity of the negative electrode with respect to that of the positive electrode is at least 1.2.
    • 一种扁平状非水电解质电池,包括密封板,金属容器,介于密封板和金属容器之间的衬垫,以及负极,正极和非水电解质,其通过向内侧压入 金属容器的开口,密封板也用作正极端子,金属容器也用作负极端子,负极的周边部分设置在金属容器的内底表面和 垫圈被公开。 优选使用锂合金或与锂合金化的元素的氧化物作为负极,优选负极相对于正极的容量的比例为 至少1.2。
    • 3. 发明授权
    • Flat-shaped battery
    • 扁平电池
    • US07914926B2
    • 2011-03-29
    • US11376310
    • 2006-03-16
    • Takashi KimuraKenichi Sano
    • Takashi KimuraKenichi Sano
    • H01M2/00H01M2/08
    • H01M2/027H01L2924/0002H01M2/0222H01M2/0262H01M2/0275H01M2/0287H01M6/12H01L2924/00
    • A flat-shaped battery according to the present invention includes: an outer can having an opening at its upper end; a gasket disposed at an inner edge of the opening; and a sealing plate that seals the opening together with the gasket. In this flat-shaped battery, the outer can houses a power generation element, the sealing plate is fixed to the inner edge of the opening of the outer can via the gasket by caulking, a nickel or nickel-containing plating layer having a thickness in a range from 1 to 10 μm is formed on an outer surface of a base composing the outer can, and a gold or gold-containing plating layer is formed on an outer surface of the nickel or nickel-containing plating layer.
    • 根据本发明的平板电池包括:外罐,其上端具有开口; 设置在所述开口的内缘的垫圈; 以及密封板,其与所述垫圈一起密封所述开口。 在该扁平状的电池中,外部容纳有发电元件,密封板通过铆接而经由垫圈固定在外罐的开口的内缘上,具有厚度的镍或镍的镀层 在构成外罐的底座的外表面上形成1至10μm的范围,并且在含镍或含镍的镀层的外表面上形成金或含金的镀层。
    • 4. 发明申请
    • NANOGRAPHITE STRUCTURE/METAL NANOPARTICLE COMPOSITE
    • 纳米结构/金属纳米复合材料
    • US20100029910A1
    • 2010-02-04
    • US11767583
    • 2007-06-25
    • Kiyotaka ShibaKenichi SanoKenji Iwahori
    • Kiyotaka ShibaKenichi SanoKenji Iwahori
    • C07K14/00
    • C07K14/47B82Y30/00B82Y40/00C01B32/174C01B32/18C01B2202/02
    • The present invention makes it possible to efficiently recognize carbon nanotubes, carbon nanohorns or modifiers thereof and to support functional compounds by fusing the ability of ferritin molecules capable of forming nanoparticles of inorganic metal atoms or inorganic metal compounds. In addition, because ferritin molecules are capable of forming two-dimensional crystals at the interface, the present invention makes it possible to align carbon nanotubes, carbon nanohorns with the use of the molecular arrangement ability of ferritin fused with nanographite structure recognition peptides. A nanographite structure/metal nanoparticle composite is constructed, wherein a nanoparticle of an inorganic metal atom or an inorganic metal compound is retained in an interior space of a protein in which a nanographite structure recognition peptide is fused or chemically bound to a surface of a cage protein such as ferritin, and wherein a plurality of nanoparticles of an inorganic metal atom or an inorganic metal compound are supported on a nanographite structure with the use of affinity of the nanographite structure recognition peptide to the nanographite structure.
    • 本发明使得能够有效地识别碳纳米管,碳纳米角或其改性剂,并且通过融合能够形成无机金属原子或无机金属化合物的纳米颗粒的铁蛋白分子的能力来支持功能性化合物。 此外,由于铁蛋白分子能够在界面处形成二维晶体,​​因此本发明可以利用与纳米结构识别肽融合的铁蛋白的分子排列能力来对准碳纳米管,碳纳米角。 构建纳米结构/金属纳米颗粒复合物,其中无机金属原子或无机金属化合物的纳米颗粒保留在蛋白质的内部空间中,其中纳米结构识别肽与笼的表面融合或化学结合 蛋白质如铁蛋白,并且其中使用纳米尺度结构识别肽与纳米尺度结构的亲和力将纳米尺度结构上的无机金属原子或无机金属化合物的多个纳米颗粒负载在纳米尺度结构上。
    • 6. 发明授权
    • Apparatus and method for performing predetermined processing on substrate with ultrasonic waves
    • 用超声波对基板进行预定处理的装置和方法
    • US07617833B2
    • 2009-11-17
    • US11296808
    • 2005-11-29
    • Akira IzumiKenichi Sano
    • Akira IzumiKenichi Sano
    • B08B3/12
    • H01L21/67051B08B3/12
    • A blocking plate 3 is disposed opposing a substrate W which is held by plural chuck pins 17 and a processing liquid is supplied from a processing liquid nozzle 5 to a space SP between the front surface Wf of the substrate and an opposed surface 3a of the blocking plate 3, whereby the processing liquid attains the liquid-tight state. While the liquid-tight state with the processing liquid is maintained, the substrate W and the blocking plate 3 rotate. In this condition, a liquid (pure water) to which ultrasonic vibration has propagated is injected from an ultrasonic nozzle 7 approximately perpendicular to a side wall surface 3b of the blocking plate 3. While the ultrasonic vibration spreads inside the blocking plate 3 along the horizontal direction, some vibrational waves spread uniformly and widely from the opposed surface 3a to the processing liquid attaining the liquid-tight state and vibrate the processing liquid. This prevents concentration of the vibrational energy at the front surface Wf, which makes it possible to uniformly process the substrate W while suppressing damage to the substrate W.
    • 阻挡板3相对于由多个卡盘销17保持的基板W相对配置,并且处理液体从处理液喷嘴5供给到基板的前表面Wf与阻挡层的相对表面3a之间的间隙SP 板3,由此处理液体达到液密状态。 当保持具有处理液体的液密状态时,基板W和挡板3旋转。 在这种情况下,超声波振动传播的液体(纯水)从超声波喷嘴7被注入,该超声波喷嘴7与阻挡板3的侧壁面3b大致垂直。同时超声波振动沿着水平线 方向,一些振动波从相对表面3a均匀地广泛地扩散到达到液密状态的处理液体,并使处理液体振动。 这防止了前表面Wf处的振动能量的集中,这使得可以在抑制基板W的损坏的同时均匀地处理基板W.
    • 9. 发明授权
    • Peptides capable of binding to titanium silver silicone
    • 能够结合钛银硅酮的肽
    • US07498403B2
    • 2009-03-03
    • US10566535
    • 2004-07-30
    • Kiyotaka ShibaKenichi Sano
    • Kiyotaka ShibaKenichi Sano
    • A61K38/08A61K38/10
    • C07K7/06C07K7/08G01N33/5308G01N33/553G01N33/56983G01N33/84G01N2500/00
    • The present invention provides a peptide sequence, a phage, an artificial protein or a chimeric molecule having a binding ability to titanium, silver, silicon, necessary to confer higher capacity of titanium, silver, silicon material with the use of soft matters, or to provide a complex of a peptide, a phage, an artificial protein or a chimeric molecule, and titanium, having the peptide sequence and functional peptide sequence. By bringing into contact a population of phage wherein said phage of said population collectively express a library of different peptide sequence, recovering titanium bound to phage particles via peptide sequence by centrifugation, proliferating the obtained phage particles in bacteria, and repeating panning operation and concentrating titanium binding phage clones. Among the phage clones, peptide RKLPDAPGMHTW (SEQ ID NO: 3) and the like is identified. As for a peptide having a binding ability to titanium, silver, silicon, RKLPDA (SEQ ID NO: 1) or RALPDA (SEQ ID NO: 2) can be exemplified.
    • 本发明提供了具有与钛,银,硅的结合能力的肽序列,噬菌体,人造蛋白或嵌合分子,其必须赋予使用软质的钛,银,硅材料更高的容量,或 提供具有肽序列和功能性肽序列的肽,噬菌体,人造蛋白或嵌合分子的复合物和钛。 通过与所述群体的噬菌体接触,其中所述群体的所述噬菌体共同表达不同肽序列的文库,通过离心回收通过肽序列与噬菌体颗粒结合的钛,使获得的噬菌体颗粒在细菌中增殖,并重复平移操作并浓缩钛 结合噬菌体克隆。 在噬菌体克隆中,鉴定了肽RKLPDAPGMHTW(SEQ ID NO:3)等。 对于具有钛,银,硅,RKLPDA(SEQ ID NO:1)或RALPDA(SEQ ID NO:2)的结合能力的肽。