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Dive into the research topics where Nobuyuki Higashiyama is active.

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Featured researches published by Nobuyuki Higashiyama.


Journal of Power Sources | 1998

Hydrogen-absorbing alloy electrode for metal hydride alkaline batteries and process for producing the same

Yoshinori Matsuura; Mitsuzo Nogami; Mamoru Kimoto; Nobuyuki Higashiyama; Yasushi Kuroda; Ikuo Yonezu; Koji Nishio; Toshihiko Saito

A hydrogen-absorbing alloy electrode for metal hydride alkaline batteries uses as hydrogen-absorbing material a powder of a rare earth element-nickel hydrogen-absorbing alloy obtained by pulverizing thin strips of said alloy prepared by single roll process and having an average thickness of 0.08 to 0.35 mm and a minimum size of crystal grains present in the roll-surface size of at least 0.2 μm and a maximum size of crystal grains in the open-surface side of not more than 20 μm. A process for producing the above electrode is also provided. The electrode can provide, when used as negative electrode, metal hydride alkaline batteries which are excellent in both high-rate discharge characteristics at an initial period of charge-discharge cycles and charge-discharge cycle characteristics.


Journal of Alloys and Compounds | 1999

Influence of surface treatment by HCl aqueous solution on electrochemical characteristics of a Mm(Ni–Co–Al–Mn)4.76 alloy for nickel–metal hydride batteries

Teruhiko Imoto; Kikuko Kato; Nobuyuki Higashiyama; Mamoru Kimoto; Yasuhiko Itoh; Koji Nishio

Abstract Surface treatment of a Mm(Ni0.64Co0.20Al0.04Mn0.12)4.76 alloy used as negative electrode material was examined to improve the performance of nickel–metal hydride secondary batteries. The surface treatment was conducted by dipping and stirring the alloy into an HCl aqueous solution of pH 1.0 at room temperature. Initial discharge characteristics and charge–discharge cycle performance of the surface-treated alloy were evaluated by an electrochemical half cell and a sealed test cell. The surface structure of the surface-treated alloy was analyzed by X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and transmission electron microscopy (TEM) with an energy disperse X-ray spectrometer (EDX). In this paper, the influence of the surface treatment on the charge–discharge characteristics, particularly on the initial discharge characteristics, and surface structure of the alloy are discussed.


Journal of Alloys and Compounds | 1999

Microstructure and electrochemical characteristics of surface-treated Mm(Ni-Co-Al-Mn)4.76 alloys for nickel–metal hydride batteries

Teruhiko Imoto; Kikuko Kato; Nobuyuki Higashiyama; Mamoru Kimoto; Yasuhiko Itoh; Koji Nishio

Abstract The microstructure and electrochemical characteristics of surface-treated Mm(Ni 0.64 Co 0.20 Al 0.04 Mn 0.12 ) 4.76 alloys, (a) induction-melted and subsequently annealed alloy and (b) rapidly quenched and subsequently annealed alloy were examined to clarify the influence of the microstructure on the surface treatment effects. The surface treatment was conducted by dipping and stirring the alloys into an HCl aqueous solution of pH 1.0 at room temperature. Their initial discharge characteristics and charge–discharge cycle performance were evaluated by an electrochemical half cell and a sealed test cell. The surface structure was analyzed by using X-ray photoelectron spectroscopy (XPS), scanning electron microscopy (SEM), and transmission electron microscopy (TEM) with an energy disperse X-ray spectrometer (EDX). It was found that a more homogeneous microstructure present before the surface treatment leads to an increase of the specific surface area and to an enrichment of Ni and Co metal on the surface layer of the surface-treated alloy. This leads to an enhancement of the initial electrochemical activity.


Journal of Power Sources | 1998

Hydrogen-absorbing alloy electrode for metal hydride alkaline battery

Yoshinori Matsuura; Yasushi Kuroda; Nobuyuki Higashiyama; Mamoru Kimoto; Mitsuzou Nogami; Koji Nishio; Toshihiko Saito

A hydrogen-absorbing alloy electrode for metal hydride alkaline batteries is obtained by coating or filling a collector with a hydrogen-absorbing alloy powder consisting essentially of spherical particles and/or nearly spherical particles and then sintering the powder, the powder having an average particle diameter of 30 to 70 μm and containing 5 to 30% by volume of particles having a diameter of at least 2 times the average diameter and 10 to 40% by volume of particles having a diameter of not more than 1/2 of the average diameter. This electrode can give metal hydride alkaline batteries having excellent high-rate discharge characteristics and a long life.


Archive | 1990

Hydrogen storage alloy electrode for alkaline storage battery

Shin Fujitani; Nobuyuki Higashiyama; Yohei Hirota; Teruhiko Imoto; Kikuko Katou; Mamoru Kimoto; Yasushi Kuroda; Koji Nishio; 輝彦 井本; 菊子 加藤; 洋平 廣田; 衛 木本; 信幸 東山; 伸 藤谷; 晃治 西尾; 黒田 靖


Journal of Alloys and Compounds | 1997

Influence of preparation methods of non-stoichiometric hydrogen-absorbing alloys on the performance of nickel–metal hydride secondary batteries

Nobuyuki Higashiyama; Yoshinori Matsuura; Hiroshi Nakamura; Mamoru Kimoto; Mitsuzou Nogami; Ikuo Yonezu; Koji Nishio


Archive | 1999

Positive active material for use in sealed alkaline storage batteries

Takeshi Ogasawara; Nobuyuki Higashiyama; Mutsumi Yano; Mamoru Kimoto; Yasuhiko Itoh; Koji Nishio


Archive | 1999

Positive electrode active material for sealed type alkaline storage battery

Nobuyuki Higashiyama; Yasuhiko Ito; Mamoru Kimoto; Koji Nishio; Takeshi Ogasawara; Mutsumi Yano; 靖彦 伊藤; 毅 小笠原; 衛 木本; 信幸 東山; 睦 矢野; 晃治 西尾


Archive | 1997

Hydrogen absorbing alloy electrode, method of fabricating hydrogen absorbing alloy electrode, and alkali secondary battery

Teruhiko Imoto; Kikuko Kato; Yasushi Kuroda; Nobuyuki Higashiyama; Mamoru Kimoto; Shin Fujitani; Koji Nishio


Archive | 1999

Pasted hydrogen-absorbing alloy electrode for alkaline storage battery

Nobuyuki Higashiyama; Kikuko Kato; Teruhiko Imoto; Masutaka Ouchi; Mamoru Kimoto; Yasuhiko Itoh; Koji Nishio

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