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Dive into the research topics where Keigo Hoshina is active.

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Featured researches published by Keigo Hoshina.


Journal of The Electrochemical Society | 2011

Lithium Diffusion in Li4/3Ti5/3O4 Particles during Insertion and Extraction

Norio Takami; Keigo Hoshina; Hiroki Inagaki

Lithium diffusion in a small Li 4/3 Ti 5/3 O 4 (LTO) particle was investigated from kinetic viewpoints of two-phase transition process based on a core-shell model by means of galvanostatic and potentiostatic measurements of thin LTO composite electrodes. High-rate galvanostatic charge (insertion) ― discharge (extraction) properties of the thin LTO composite electrode showed that the insertion into the LTO particle was significantly slower than the extraction. An apparent chemical diffusion coefficient (D app ) of lithium in the LTO particle during the insertion and extraction was evaluated from the results of potential step chronoamperometry (PSCA) with a spherical finite diffusion model. The phase-boundary movements between the two phases in the cathodic and the anodic potential steps for a long-time region were controlled by lithium diffusion through Li 7/3 Ti 5/3 O 4 rock-salt (LTO-rock-salt) and Li 4/3 Ti 5/3 O 4 spinel (LTO-spinel) shell, respectively. D app in the LTO-rock-salt and the LTO-spinel phase were estimated to be approximately 1 x 10 ―12 cm 2 /s and 1.6 x 10 ―11 cm 2 /s, respectively. The slower insertion was mainly due to a D app value one order of magnitude smaller in the LTO-rock-salt than that in the LTO-spinel phase. Electrochemical kinetic properties of the LTO particle with the core-shell structure were interpreted by lithium diffusion through the LTO-rock-salt shell during the insertion and the LTO-spinel shell with the low electron conductivity during the extraction.


Journal of The Electrochemical Society | 2009

Electrochemical Kinetics and Safety of 2-Volt Class Li-Ion Battery System Using Lithium Titanium Oxide Anode

Norio Takami; Hiroki Inagaki; Takashi Kishi; Yasuhiro Harada; Yumi Fujita; Keigo Hoshina


Archive | 2009

Active material for battery, non-aqueous electrolyte battery and battery pack

Hiroki Inagaki; Keigo Hoshina; Norio Takami


Journal of Power Sources | 2015

Micro-size spherical TiO2(B) secondary particles as anode materials for high-power and long-life lithium-ion batteries

Norio Takami; Yasuhiro Harada; Takuya Iwasaki; Keigo Hoshina; Yorikazu Yoshida


Archive | 2009

Nonaqueous electrolyte battery and active material used for the same, manufacturing method of the active material, and battery pack

Yasuhiro Harada; Keigo Hoshina; Hirotaka Inagaki; Yuki Otani; Norio Takami; 圭吾 保科; 康宏 原田; 友希 大谷; 浩貴 稲垣; 則雄 高見


Archive | 2009

Battery with nonaqueous electrolyte, negative electrode active material for use in the battery, and battery pack

Yasuhiro Harada; 康宏 原田; Norio Takami; 高見 則雄; Hiroki Inagaki; 稲垣 浩貴; Keigo Hoshina; 圭吾 保科; Yuki Otani; 友希 大谷


Journal of The Electrochemical Society | 2014

Characterization of Lithium Storage in TiO2(B) by 6Li-NMR and X-Ray Diffraction Analysis

Keigo Hoshina; Yasuhiro Harada; Hiroki Inagaki; Norio Takami


Archive | 2012

Nonaqueous electrolyte battery, active material, method for producing same, method for producing alkali titanate compound, and battery pack

Yasuhiro Harada; Norio Takami; Hiroki Inagaki; Keigo Hoshina; Yuki Otani


Archive | 2007

Nonaqueous electrolyte battery and packed battery

Keigo Hoshina; Hirotaka Inagaki; Norio Takami; 圭吾 保科; 浩貴 稲垣; 則雄 高見


Archive | 2014

ELECTROCHEMICAL CELL, METHOD OF PRODUCING ELECTROCHEMICAL CELL, BATTERY PACK, AND CAR

Norio Takami; Yasuhiro Harada; Keigo Hoshina

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