Ryo Kamai
Panasonic
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Publication
Featured researches published by Ryo Kamai.
Nature Communications | 2014
Kazuhide Kamiya; Ryo Kamai; Kazuhito Hashimoto; Shuji Nakanishi
Covalent triazine frameworks, which are crosslinked porous polymers with two-dimensional molecular structures, are promising materials for heterogeneous catalysts. However, the application of the frameworks as electrocatalysts has not been achieved to date because of their poor electrical conductivity. Here we report that platinum-modified covalent triazine frameworks hybridized with conductive carbon nanoparticles are successfully synthesized by introducing carbon nanoparticles during the polymerization process of covalent triazine frameworks. The resulting materials exhibit clear electrocatalytic activity for oxygen reduction reactions in acidic solutions. More interestingly, the platinum-modified covalent triazine frameworks show almost no activity for methanol oxidation, in contrast to commercial carbon-supported platinum. Thus, platinum-modified covalent triazine frameworks hybridized with carbon nanoparticles exhibit selective activity for oxygen reduction reactions even in the presence of high concentrations of methanol, which indicates potential utility as a cathode catalyst in direct methanol fuel cells.
Angewandte Chemie | 2016
Ryo Kamai; Kazuhide Kamiya; Kazuhito Hashimoto; Shuji Nakanishi
Reducing the use of platinum (Pt) on polymer electrolyte fuel cell anodes is critical for the widespread dissemination of these energy conversion systems. Although Pt usage can be minimized by the even dispersion of isolated Pt atoms, no atomically dispersed Pt catalysts that promote hydrogen oxidation at a rate required for practical fuel cells have been reported to date. Covalent triazine frameworks with atomically dispersed Pt atoms (0.29 wt %) are described and it is demonstrated that the material has a high electrocatalytic hydrogen oxidation activity without an overpotential. Importantly, when the loading amount was increased to 2.8 wt %, the electrocatalytic hydrogen oxidation activity of the resulting electrode was comparable to that of commercial carbon supported 20 wt % Pt catalysts, and the catalytic activity for oxygen reduction was markedly reduced. Thus, Pt-modified covalent triazine frameworks selectively catalyze hydrogen oxidation, even in the presence of dissolved oxygen, which is critical for limiting cathode degradation during the start-stop cycles of fuel cells.
Archive | 2012
Shuji Nakanishi; Ryo Kamai; Yuya Suzuki; Kazuhito Hashimoto; Kazuhide Kamiya
Archive | 2014
Shuji Nakanishi; Ryo Kamai; Yuya Suzuki; Kazuhito Hashimoto; Kazuhide Kamiya
Archive | 2012
Michio Suzuka; Ryo Kamai; Shuji Nakanishi; Takeyuki Yamaki; Kazuhito Hashimoto; Adam Heller; Yong Zhao
Journal of Electroanalytical Chemistry | 2017
Ryo Kamai; Shuji Nakanishi; Kazuhito Hashimoto; Kazuhide Kamiya
Archive | 2013
Ryo Kamai; Shuji Nakanishi; Yuya Suzuki; Yuuki Kitade; Takao Hayashi
Archive | 2012
Michio Suzuka; Takeyuki Yamaki; Takashi Sekiguchi; Ryo Kamai
ChemistrySelect | 2016
Go Tei; Ryo Kamai; Akihiro Sakai; Satoshi Yotsuhashi; Takao Hayashi; Masato Aizawa
Archive | 2012
Ryo Kamai; Michio Suzuka; Shuji Nakanishi; Kazuhito Hashimoto; Adam Heller