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Dive into the research topics where Hiroyuki Hasebe is active.

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Featured researches published by Hiroyuki Hasebe.


Journal of The Electrochemical Society | 2002

Laminated Thin Li-Ion Batteries Using a Liquid Electrolyte

Norio Takami; Takahisa Ohsaki; Hiroyuki Hasebe; Masao Yamamoto

Thin Li-ion batteries with a laminated film bag as a casing were developed by using a liquid electrolyte and a graphitized boron-doped mesophase-pitch-based carbon fiber (B-MCF) anode. The thin Li-ion batteries exhibited excellent discharge performance, long cycle life, and very low swelling under high-temperature storage. A 1.5 M solution of LiBF4 in an ethylene carbonate (EC)/γ-butyrolactone (GBL) (1:3 by volume) mixed solvent is advantageous for use as the electrolyte in the laminated film bag because of its high flame point of 129°C, high boiling point of 216°C, low vapor pressure, and high conductivity of 2.1 mS/cm at -20°C The B-MCF anode in the LiBF 4 -EC/GBL electrolyte exhibited a high reversible capacity of 345 mAh/g. a high coulombic efficiency of 94% at the first cycle, and high rate capability. It was demonstrated that the thin Li-ion battery with a thickness of 3.6 mm has a high energy density of 172 Wh/kg. high rate capability between 0.2 and 3C rate discharge, a high capacity ratio of 50% at 1C rate discharge and -20°C, and a long cycle life of more than 500 cycles at 1C rate charge-discharge cycling. The B-MCF anode led to the high rate discharge performance and the long cycle life of the thin Li-ion batteries using the LiBF 4 -EC/GBL electrolyte. The very low swelling and small evolution of gas under the high-temperature storage at 85°C were attributable to the stability of LiBF 4 -EC/GBL electrolyte against the fully charged LiCoO 2 cathode material.


Archive | 2001

Nonaqueous electrolyte and nonaqueous-electrolyte secondary battery

Masahiro Sekino; Asako Satoh; Masashi Fujiwara; Hiroyuki Hasebe


Archive | 2003

Direct methanol fuel cell system, fuel cartridge, and memory for fuel cartridge

Hirotaka Sakai; Nobuo Shibuya; Hiroyuki Hasebe; Norihiro Tomimatsu; Hiroyasu Sumino; Hirohisa Miyamoto; Masato Akita


Archive | 1990

Nickel-metal hydride secondary cell

Hiroyuki Hasebe; Kazuta Takeno; Yuji Sato; Hiroyuki Takahashi; Hirotaka Hayashida; Kiyoshi Mitsuyasu; Ichirou Sawatari


Archive | 1993

Hydrogen-absorbing alloy for battery, method of manufacturing the same, and secondary nickel-metal hydride battery

Hiroyuki Hasebe; Shusuke Inada; Yoshiyuki Isozaki; Takamichi Inaba; Takao Sawa; Hiromichi Horie; Noriaki Yagi; Hiromi Shizu; Yoshiko Kanazawa


Archive | 2002

Non-aqueous electrolyte secondary battery and method of production of the same

Takahisa Ohsaki; Norio Takami; Hiroyuki Hasebe; Motoya Kanda; Asako Sato; Takashi Kuboki; Shuji Yamada


Archive | 1990

Nickel-metal hydride secondary cell, and method of manufacturing the same, hydrogen absorbing alloy particles for cell, method of manufacturing the same

Hiroyuki Hasebe; Naoyuki Sori; Tomohisa Arai


Archive | 2003

Liquid type fuel cell and fuel cartridge used by cell

Hiroyuki Hasebe; Hirotaka Sakai; 広隆 酒井; 裕之 長谷部


Archive | 2002

Positive electrode and nonaqueous electrolyte secondary battery

Hiroyuki Hasebe; Jun Monma; Tomokazu Morita; Katsuyuki Sakurai; 朋和 森田; 勝之 櫻井; 裕之 長谷部; 旬 門馬


Archive | 1999

Nonaqueous electrolyte secondary battery and method of manufacturing nonaqueous electrolyte secondary battery

Norio Takami; Hiroyuki Hasebe; Takahisa Osaki; Motoya Kanda

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