Profile Information
- Affiliation
- Postdoctoral Researcher, Department of Chemistry, Faculty of Science, Gakushuin University
- Degree
- 博士(理学)(東海大学大学院)
- Researcher number
- 10637937
- J-GLOBAL ID
- 201501015060873006
- researchmap Member ID
- B000247109
- External link
Research Interests
6Research Areas
2Research History
5-
2021 - Present
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Apr, 2016 - Jul, 2018
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Apr, 2012 - Mar, 2016
Awards
2Papers
27-
Ceramics International, 47(11) 15939-15946, Jun, 2021 Peer-reviewedLead authorCorresponding author
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Ceramics, 3(1) 114-126, Mar 19, 2020 Peer-reviewedTo avoid the proneness to degradation due to coking in the operation of solid oxide fuel cells (SOFCs) directly running on methane (CH4) fuels, a modified porous anode of the Ni1−XCoX/YSZ (yttria-stabilized zirconia) cermet prepared by an impregnation method is presented. The influence of the Co alloying content on the cermet microstructure, SOFC characteristics, and prolonged cell performance stability has been studied. Co was incorporated into Ni and formed a solid solution of Ni1−XCoX alloy connected with the YSZ as the cermet anode. The porous microstructure of the Ni1−XCoX/YSZ cermet anode formed by sintering exhibited a grain growth with an increase in the Co alloying content. The electrochemical performance of the cells consisting of the Ni1−XCoX/YSZ cermet anode, the YSZ electrolyte, and the LSM (La0.8Sr0.2MnO3) cathode showed an enhancement by the Ni1−XCoX impregnation treatment for the respective supply of H2 and CH4 to the anode. The cell using the Ni0.75Co0.25/YSZ cermet anode (the Ni0.75Co0.25 cell) showed the highest cell performance among the cells tested. In particular, the performance enhancement of this cell was found to be more significant for CH4 than that for H2; a 45% increase in the maximum power density for CH4 and a 17% increase for H2 at 750 °C compared with the performance of the cell using the Ni/YSZ cermet anode. Furthermore, the prolonged cell performance stability with a continuous CH4 supply was found for the Ni0.85Co0.15 and Ni0.75Co0.25 cells at least for 60 h at 750 °C. These enhancement effects were caused by the optimum porous microstructure of the cermet anode with the low anodic polarization resistance.
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INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 42(15) 9493-9499, Apr, 2017 Peer-reviewed
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ADVANCED POWDER TECHNOLOGY, 28(1) 73-82, Jan, 2017 Peer-reviewed
Misc.
58-
粉体および粉末冶金, 64(3) 109‐115(J‐STAGE)-115, 2017<p>To fine-tune the properties of ceramics, they can now be processed into uniform-size nanocrystals with spherical, cube, sheet, rod, wire shapes. Another trend in research aims at arranging individual nanocrystals into superlattices and investigating their unique properties. Despite these recent advances, controlling the shape, crystal structure, and surface characteristics of ceramic nanocrystals is still a difficult task. Here, we report an approach to tailor-made ceramic nanocrystals by means of organic ligand-assisted hydrothermal method. We succeeded in the synthesis of the ceramic nanocrystals such as ceria (CeO2) nanocubes and titania (TiO2) nanosheets. Also importantly, the use of water, instead of an organic solvent, provides an environmentally benign "green" chemistry route to nano building blocks for advanced materials and devices.</p>
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66(10) 753-757, Oct, 2015
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Trans JWRI (Join Weld Res Inst Osaka Univ), 44(1) 15-18, Jun, 2015
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日本セラミックス協会秋季シンポジウム講演予稿集(CD-ROM), 27th ROMBUNNO.2I06, Aug 25, 2014
Presentations
42-
Visual-JW2014, Nov 14, 2014
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AMDI-5 Conjunction with 6th IBB Frontier Symposium, Nov, 2014
Professional Memberships
3Research Projects
2-
試験研究費助成, 公益財団法人 内田エネルギー科学振興財団, Jul, 2019 - Mar, 2020
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若手研究(B), 日本学術振興会, Apr, 2015 - Mar, 2017