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Dive into the research topics where Yohei Hirota is active.

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Featured researches published by Yohei Hirota.


Journal of Alloys and Compounds | 2000

The surface structure and the electrochemical properties of hydrogen-absorbing alloys treated with an HCl aqueous solution

Tadashi Ise; Tetsuyuki Murata; Yohei Hirota; Teruhiko Imoto; Mitsuzo Nogami; Shinsuke Nakahori

The surface structure and the electrochemical properties of hydrogen-absorbing alloys treated with an HCl aqueous solution were investigated. This process was observed to form a porous layer rich in nickel on the alloy surface because HCl partially dissolved some of the other elements from the alloy. Therefore, the discharge capacity increased by increasing the reaction surface area. However, the overvoltage of an excessively treated alloy increased along with the depth of discharge as the surface layer of the alloy oxidized and thickened. The effects of treatment on alloys were found to be determined by the hydrogen ion amounts in the acid solution per unit mass of the alloy, regardless of the concentration and volume of the solution. The optimal hydrogen ion amount for a treatment solution was found to be 0.1 mol/kg.


Journal of Alloys and Compounds | 2000

The effect of particle size on the electrochemical properties of hydrogen absorbing alloy electrodes

Tadashi Ise; Tetsuyuki Murata; Yohei Hirota; Mitsuzo Nogami; Shinsuke Nakahori

Abstract The investigation of the effect of the particle size of hydrogen-absorbing-alloys on the electrochemical properties of electrodes revealed that the electrochemical reactivity of small-particle electrodes containing conductive powder was excellent, but that the discharge capacity of the alloy electrodes composed of small particles containing no conductive powder was small. A possible reason for this reduced capacity is the existence of particles that cannot be discharged due to weak contact between the particles as the volume of the alloy changed. Thus, batteries made from electrodes composed of particles larger than 25 μm were found to have superior charge–discharge cycle characteristics.


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


Archive | 2001

Method for mfg. alloy electrode adsorbing hydrogen

Chuji Ise; Tetsuyuki Murata; Yohei Hirota


Archive | 1999

Hydrogen-absorbing alloy electrode for alkaline secondary battery and method of manufacture thereof

Kikuko Kato; Masutaka Ouchi; Yohei Hirota; Teruhiko Imoto; Nobuyuki Higashiyama; Mamoru Kimoto; Shin Fujitani; Koji Nishio


Archive | 2002

Method for production of hydrogen storage alloy for use in alkaline storage batteries

Teruhiko Imoto; Masutaka Ouchi; Yohei Hirota; Kikuko Kato; Nobuyuki Higashiyama; Mamoru Kimoto; Shin Fujitani; Koji Nishio


Archive | 2000

Hydrogen storage alloy for alkaline storage battery and its manufacture, hydrogen storage alloy electrode for the alkaline storage battery, and its manufacture

Shin Fujitani; Nobuyuki Higashiyama; Yohei Hirota; Teruhiko Imoto; Kikuko Katou; Mamoru Kimoto; 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


Archive | 1999

Alkaline storage battery and its manufacture

Yohei Hirota; Teruhiko Imoto; Tadashi Ise; Tetsuyuki Murata; 輝彦 井本; 忠司 伊勢; 洋平 廣田; 徹行 村田


Archive | 2001

Method of manufacturing hydrogen-absorbing alloy electrode

Teruhiko Imoto; Tadashi Ise; Yohei Hirota; Takayuki Murakami


Archive | 1998

Hydrogen absorbing alloy electrode and process for fabricating same

Teruhiko Imoto; Kikuko Kato; Yohei Hirota; Nobuyuki Higashiyama; Mamoru Kimoto; Shin Fujitani; Koji Nishio

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