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Featured researches published by Toshiyuki Kabata.


Synthetic Metals | 1993

Ion rechargeable batteries using synthetic organic polymers

Yoshiaki Echigo; Keiichi Asami; Hideki Takahashi; Katsuo Inoue; Toshiyuki Kabata; Okitoshi Kimura; Toshiyuki Ohsawa

Abstract We have newly developed multi-porous sheets fabricated from chemically polymerized polyaniline which are applicable for positive electrodes of ion rechargeable batteries. We have also developed novel multi-porous sheets for negative electrodes made of carbon material which are derived from synthetic organic polymer. Both sheets fabricated to have an area of maximum 1000cm 2 and thickness of 0.3∼3.0mm are reinforced by synthetic short fiber. Because of fiber-reinforcement, these sheets show excellent mechanical properties and easy handling in spite of their high porosity. The polyaniline positive electrodes have been combined with the carbon negative electrodes to produce high energy density cells having excellent cycle life and a high working voltage. Preliminary prototype CR 2016 cells made of these electrodes in welded steel can have demonstrated up to 17 mWh/cell.


Synthetic Metals | 1989

Polaronic transition in electrochemical polymerized polyaniline

Toshiyuki Ohsawa; Toshiyuki Kabata; Okitoshi Kimura; K. Yoshino

Abstract Polyaniline films prepared by electrochemical polymerization in sulfuric acid show stability for doping (energy density 140–160 Ah/kg) and undoping in non-aqueous electrolyte by choosing suitable conditions. According to cyclic voltammetry with lower potential sweep rates (


Japanese Journal of Applied Physics | 1989

In Situ Conductivity, Electron Spin Resonance and Absorption Spectra Measurements in Polyaniline During Electrochemical Doping

Toshiyuki Ohsawa; Toshiyuki Kabata; Okitoshi Kimura; Mitsuyoshi Onoda; Katsumi Yoshino

In in situ measurements of ESR during electrochemical doping in polyaniline, the maximum spin density is observed at 3.25 V. ESR linewidth decreases upon doping, but after exhibiting a minimum value at 3.5 V, it increases again, tending to saturation. On the other hand, in situ conductivity measurement demonstrates the maximum value (1.6 S/cm) at around 3.5 V. Taking into consideration the complex absorption spectral change upon doping, the results are discussed in terms of polaron and bipolaron models. At higher doping levels, suppression of the interchain transfer of polaronic species due to Coulomb interaction is introduced to explain the decrease of conductivity.


Synthetic Metals | 1993

Non-linear electric properties of polyaniline doped with organic acceptors

Toshiyuki Ohsawa; Toshiyuki Kabata; Okitoshi Kimura; S. Nakajima; Hiroshi Nishihara; K. Yoshino

Abstract Complexes of polyaniline (PANI) with various organic r -electron acceptors such as TCNQ and others were prepared by the automatic doping method. The relationship between current and applied voltage was linear and ohmic in argon atmosphere at voltages below 5 V, but in air it was non-linear. A field-effect current was observed at PANI-chloranil complex on silicon substrate.


international conference on software maintenance | 1994

New type polymer electrode using soluble polyaniline

Toshishige Fujii; Nobuo Katagiri; Okitoshi Kimura; Toshiyuki Kabata; Yoshiko Kurosawa; Yoshitaka Hayashi; Hiroyuki Iechi; Toshiyuki Ohsawa

Abstract A new type of electrode has been prepared by the coating method from a solution mixture of polyaniline(PANI) and V 2 O 5 . The composite electrode exhibited high capacity density of 200 mAh cm −3 , favorable redox activity explainable by the bi-ion-transfer mechanism, and high redox stability against the over-discharging. This result was supported from X ray diffraction patterns of the composite electrode.


Synthetic Metals | 1991

Doping reaction at the interface between polyaniline and solid state electrolytes

Toshiyuki Ohsawa; S Yoneyama; Toshiyuki Kabata; Hiroshi Nishihara; Kunitsugu Aramaki; K. Yoshino

Abstract Electrochemical doping of polyaniline (PANI) can be carried out in solid polymer electrolyte (SPE) with a high ionic conductivity, 4 × 10−5S/cm. Cyclic voltammograms on PANI in SPE are different from those in liquid electrolyte solutions. Dependency of cyclic voltammograms on the conditions such as type and concentration of supporting electrolyte or the potential applied suggests the existence of two types of doping processes derived from the different solvation effect.


Archive | 1990

Negative electrode for secondary battery

Toshiyuki Ohsawa; Toshiyuki Kabata; Okitoshi Kimura; Sachiko Yoneyama


Archive | 1991

Solid electrolyte, electrochemical device including the same and method of fabricating the solid electrolyte

Toshiyuki Ohsawa; Toshiyuki Kabata; Okitoshi Kimura; Sachiko Kimura; Tetsuya Samura


Archive | 1996

Ionic conductive polymer gel and lithium-ion battery using the same

Masahiro Taniuchi; Tomohiro Inoue; Toshiyuki Kabata; Toshiyuki Ohsawa; Okitoshi Kimura


Archive | 1993

Positive electrode and secondary battery using the same

Toshishige Fujii; Okitoshi Kimura; Toshiyuki Ohsawa; Toshiyuki Kabata; Nobuo Katagiri

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