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Dive into the research topics where Tomohiro Kuroha is active.

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Featured researches published by Tomohiro Kuroha.


Journal of Materials Chemistry | 2018

Energy efficiency of ionic transport through proton conducting ceramic electrolytes for energy conversion applications

Takashi Nakamura; Shusuke Mizunuma; Yuta Kimura; Yuichi Mikami; Kousuke Yamauchi; Tomohiro Kuroha; Noboru Taniguchi; Yoichiro Tsuji; Yuji Okuyama; Koji Amezawa

In this study, the efficiency of ionic transport through proton-conducting ceramic electrolytes for energy conversion applications was discussed while considering the energy losses caused by the mixed ionic and electronic conduction and by the ionic transport resistance. It was shown that high energy efficiency cannot be expected with an extremely thin electrolyte because of the significant energy loss due to the internal current leakage. In the case of a fuel cell with a BaZr0.8Y0.2O3−δ electrolyte operating at 873 K, the maximum energy efficiency was estimated to be only 82% when the product of the external current density and the electrolyte thickness was 1.7 × 10−3 A cm−1. The energy efficiency for the ionic transport in BaZr0.8Y0.2O3−δ was compared with those for typical oxide ion conductors, i.e. yttria stabilized zirconia and Ce0.9Gd0.1O1.95−δ, under various fuel cell operating conditions. BaZr0.8Y0.2O3−δ can provide higher energy efficiency than the oxide ion conductors at lower temperatures and under higher current conditions. For the efficient operation of fuel cells using a proton-conducting ceramic as an electrolyte, lower operating temperatures below 873 K is preferable from the viewpoint of energy loss in the electrolyte. The influence of the partial conductivity variation on the energy efficiency was also discussed. It was shown that not only the increase of ionic conductivity but also the decrease of electronic conductivity could improve the energy efficiency if the electrolyte thickness can be optimized. This means that decreasing electronic conductivity as well as increasing proton conductivity can be an effective strategy to develop highly efficient proton conductors for energy conversion applications.


Archive | 2010

Photoelectrochemical cell and energy system using same

Tomohiro Kuroha; Takaiki Nomura; Kazuhito Hato; Noboru Taniguchi; Takahiro Suzuki; Kenichi Tokuhiro


Solid State Ionics | 2005

Characteristics of novel BaZr0.4Ce0.4In0.2O3 proton conducting ceramics and their application to hydrogen sensors

Noboru Taniguchi; Tomohiro Kuroha; Chiharu Nishimura; Kenji Iijima


Archive | 2011

Hydrogen generation device

Takahiro Suzuki; Takaiki Nomura; Kazuhito Hatoh; Noboru Taniguchi; Tomohiro Kuroha; Kenichi Tokuhiro


Archive | 2009

Photoelectrochemical cell and energy system using the same

Takaiki Nomura; Takahiro Suzuki; Kenichi Tokuhiro; Tomohiro Kuroha; Noboru Taniguchi; Kazuhito Hatoh; Shuzo Tokumitsu


Archive | 2013

Polyelectrolyte-type fuel cell

Tomohiro Kuroha; Shinsuke Takeguchi; Satoshi Otani; Yasushi Sugawara; Mitsuo Yoshimura


Archive | 2008

TITANIUM OXIDE PHOTOCATALYST AND METHOD FOR PRODUCING THE SAME

Noboru Taniguchi; Shuzo Tokumitsu; Tomohiro Kuroha; Kenichi Tokuhiro; Akio Nakashima; Keita Kobayashi; Shinji Nakahara


Archive | 2008

PHOTOCATALYTIC MATERIAL AND PHOTOCATALYTIC MEMBER AND PURIFICATION DEVICE USING THE PHOTOCATALYTIC MATERIAL

Noboru Taniguchi; Tomohiro Kuroha; Shuzo Tokumitsu; Kenichi Tokuhiro


Archive | 2010

Hydrogen generation system and hot water production system

Kenichi Tokuhiro; Kazuhito Hatoh; Takaiki Nomura; Tomohiro Kuroha; Noboru Taniguchi; Takahiro Suzuki; Satoru Tamura; Atsuo Okaichi; Norihiro Miyamura


Archive | 2010

Optically pumped semiconductor and device using the same

Noboru Taniguchi; Kenichi Tokuhiro; Takahiro Suzuki; Tomohiro Kuroha; Takaiki Nomura; Kazuhito Hatoh

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