• Search Research Projects
  • Search Researchers
  • How to Use
  1. Back to project page

1999 Fiscal Year Final Research Report Summary

Composite electrochemical catalysis utilizing mixed potential at the heterogeneous contact

Research Project

Project/Area Number 10650729
Research Category

Grant-in-Aid for Scientific Research (C)

Allocation TypeSingle-year Grants
Section一般
Research Field Metal making engineering
Research InstitutionNagoya Institute of Technology

Principal Investigator

YAMAGUCHI Shu  Nagoya Institute of Technology, Dept., of Materials Science and Engineering, Associate Professor, 工学部, 助教授 (10182437)

Project Period (FY) 1998 – 1999
KeywordsMixed potential / Ionic conductor / Mixed conductor / Catalysis / Composite / NOx / DC Polarization / Space Charge
Research Abstract

The present research project was aimed to develop a novel composite electrochemical catalysis which can utilize anomalous reactivity of gas species at the heterogeneous interface among porous oxide electrode with ion-electron mixed conductivity, solid electrolyte, and metallic electrode. In a microscopic scale, the catalysis is regarded as the mixture of microscaled cells with asymmetric electrode configuration that utilize so-called mixed potential, which is closely related to the space charge effect at the heterogeneous interface. In the early stage of the project, the mixture of Nd_<2-X>Ce_XCuO_4, Nd-doped CeO_2, and Au powder were examined for the catalytic activity to the NO/NO_2 Red-Ox reaction. The composite catalysis showed enhanced activity for the reaction compared to those of single component ones. It is also shown that the composite of NiO, YSZ, Au powder also showed the enhanced catalytic reaction for NOx Red-Ox. In order to examine the mechantism of the enhanced catalytic … More reaction of composites, electrochemical cells with three electrodes were examined. We found that the rate determinant steps are the mixed process of the competent absorption of NO_2 and O_2 on porous oxide and electron transfer reaction, and the simple electron transfer reaction on the Au electrode. The exchange current density of both reactions are deduced from the model. It should be noted that the relaxation of space charge, built-up at the interface of heterogeneous contact interface by both mobile ion and the adsorbed gas species is the essential mechanism for the selective enhancement of the catalytic reaction. Therefore the electronic band structure and electronic transport properties of oxides are estimated as playing important role in the formation of the mixed potential, that is one of the key to understand the anomalous reactivity of composite electrochemical catalysis. Based on these view points, the survey of possible candidates for the oxide electrode is conducted in accordance with the detailed investigation of electronic and ionic transport properties and electronic band structure by means of the photoelectron spectroscopy. As the direct reduction of NOx is difficult because of the very high activation energy, it is proposed the utilization of the proton or dissolved water in oxide electrode for the indirect reduction reaction. The detailed discussion on the oxide protonic conductors are also conducted. Less

  • Research Products

    (12 results)

All Other

All Publications (12 results)

  • [Publications] 山口周 他4名: "NOxを含む雰囲気におけるNd_<2-x>Ce_xCuO_4/Nd-CeO_2/Metal電極セルの直流分極特性"第23回固体イオニクス討論会講演要旨集. 175-176 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K.Kobayashi,S.Yamaguchi 他1名: "Electrical Transport Properties of Calcium Zirconate at High Temperature"Solid State Ionics. 108. 355-362 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K.Kobayashi,S.Yamaguchi 他3名: "Partial Conductivity of YSZ Doped with 10 mol% TiO_2"Korean Journal of Ceramics. 4. 114-121 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] S.Yamaguchi 他2名: "Electrical Conductivity and Thermoelectric Power Measurements of Y_2Ti_2O_7"Solid State Ionics. 106. 150-154 (1998)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] K.Kobayashi,S.Yamaguchi 他3名: "Electronic Transport Properties and Electronic Structure of TiO_2-doped YSZ"Solid State Ionics. 135. 643-652 (2000)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] T.Higuchi,S.Yamaguchi 他6名: "Hole-State and Defect Structure of Protonic Conductor SrTiO_3 Observed by High-Resolution X-ray Absorption Spectroscopy"Solid State Ionics. 136-137. 261-264 (2000)

    • Description
      「研究成果報告書概要(和文)」より
  • [Publications] R.Naito, K.Kobayashi, K.Shibata, S.Yamaguchi, Y.Iguchi: "DC polarization of Nd_<2-X>Ce_XO_4/Nd-CeO_2/Metal electrode cell under NOx bearing atmosphere."Proceeding of the 23rd Anual Meeting of SSI Japan. 141-142 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] K.Kobayashi, S.Yamaguchi, Y.Iguchi: "Electrical Transport Properties of Calcium Zirconate at High Temperature."Solid State Ionics. 108. 355-362 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] K.Kobayashi, Y.Kai, S.Yamaguchi, T.Kawashima, Y.Iguchi: "Partial Conductivity of YSZ Doped with 10mol%TiO_2."Korean Journal of Ceramics. 4[2]. 114-121 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] S.Yamaguchi, K.Kobayashi, Y.Iguchi: "Electrical Conductivity and Thermoelectric Power Measurements of Y_2Ti_2O_7."J.of Ceramic Soc. of Jpn.. 106[11]. 1073-1078 (1998)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] K.Kobayashi, S.Yamaguchi, T.Higuchi, S.Shin, and Y.Iguchi: "Electronic Transport Properties and Electronic Structure of TiO_2 doped YSZ."Solid State Ionics. 135. 643-652 (2000)

    • Description
      「研究成果報告書概要(欧文)」より
  • [Publications] T.Higuchi, T.Tsukamoto, N.Sata, M.Ishigame, K.Kobayashi, S.Yamaguchi, M.Fujisawa, and S.Shin: "Hole-State and Defect Structure of Protonic Conductor SrTiO_3 Observed by High-Resolution X-ray Absorption Spectroscopy"Solid State Ionics. 136-137. 261-264 (2000)

    • Description
      「研究成果報告書概要(欧文)」より

URL: 

Published: 2002-03-26  

Information User Guide FAQ News Terms of Use Attribution of KAKENHI

Powered by NII kakenhi