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Dive into the research topics where Kotaro Higashi is active.

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Featured researches published by Kotaro Higashi.


Journal of the American Chemical Society | 2015

Surface-Regulated Nano-SnO2/Pt3Co/C Cathode Catalysts for Polymer Electrolyte Fuel Cells Fabricated by a Selective Electrochemical Sn Deposition Method

Kensaku Nagasawa; Shinobu Takao; Shin-ichi Nagamatsu; Gabor Samjeské; Oki Sekizawa; Takuma Kaneko; Kotaro Higashi; Takashi Yamamoto; Tomoya Uruga; Yasuhiro Iwasawa

We have achieved significant improvements for the oxygen reduction reaction activity and durability with new SnO2-nanoislands/Pt3Co/C catalysts in 0.1 M HClO4, which were regulated by a strategic fabrication using a new selective electrochemical Sn deposition method. The nano-SnO2/Pt3Co/C catalysts with Pt/Sn = 4/1, 9/1, 11/1, and 15/1 were characterized by STEM-EDS, XRD, XRF, XPS, in situ XAFS, and electrochemical measurements to have a Pt3Co core/Pt skeleton-skin structure decorated with SnO2 nanoislands at the compressive Pt surface with the defects and dislocations. The high performances of nano-SnO2/Pt3Co/C originate from efficient electronic modification of the Pt skin surface (site 1) by both the Co of the Pt3Co core and surface nano-SnO2 and more from the unique property of the periphery sites of the SnO2 nanoislands at the compressive Pt skeleton-skin surface (more active site 2), which were much more active than expected from the d-band center values. The white line peak intensity of the nano-SnO2/Pt3Co/C revealed no hysteresis in the potential up-down operations between 0.4 and 1.0 V versus RHE, unlike the cases of Pt/C and Pt3Co/C, resulting in the high ORR performance. Here we report development of a new class of cathode catalysts with two different active sites for next-generation polymer electrolyte fuel cells.


Angewandte Chemie | 2014

Mapping Platinum Species in Polymer Electrolyte Fuel Cells by Spatially Resolved XAFS Techniques

Shinobu Takao; Oki Sekizawa; Shin-ichi Nagamatsu; Takuma Kaneko; Takashi Yamamoto; Gabor Samjeské; Kotaro Higashi; Kensaku Nagasawa; Takuya Tsuji; Motohiro Suzuki; Naomi Kawamura; Masaichiro Mizumaki; Tomoya Uruga; Yasuhiro Iwasawa

There is limited information on the mechanism for platinum oxidation and dissolution in Pt/C cathode catalyst layers of polymer electrolyte fuel cells (PEFCs) under the operating conditions though these issues should be uncovered for the development of next-generation PEFCs. Pt species in Pt/C cathode catalyst layers are mapped by a XAFS (X-ray absorption fine structure) method and by a quick-XAFS(QXAFS) method. Information on the site-preferential oxidation and leaching of Pt cathode nanoparticles around the cathode boundary and the micro-crack in degraded PEFCs is provided, which is relevant to the origin and mechanism of PEFC degradation.


Journal of Physical Chemistry Letters | 2015

Same-View Nano-XAFS/STEM-EDS Imagings of Pt Chemical Species in Pt/C Cathode Catalyst Layers of a Polymer Electrolyte Fuel Cell.

Shinobu Takao; Oki Sekizawa; Gabor Samjeské; Shin-ichi Nagamatsu; Takuma Kaneko; Takashi Yamamoto; Kotaro Higashi; Kensaku Nagasawa; Tomoya Uruga; Yasuhiro Iwasawa

We have made the first success in the same-view imagings of 2D nano-XAFS and TEM/STEM-EDS under a humid N2 atmosphere for Pt/C cathode catalyst layers in membrane electrode assemblies (MEAs) of polymer electrolyte fuel cells (PEFCs) with Nafion membrane to examine the degradation of Pt/C cathodes by anode gas exchange cycles (start-up/shut-down simulations of PEFC vehicles). The same-view imaging under the humid N2 atmosphere provided unprecedented spatial information on the distribution of Pt nanoparticles and oxidation states in the Pt/C cathode catalyst layer as well as Nafion ionomer-filled nanoholes of carbon support in the wet MEA, which evidence the origin of the formation of Pt oxidation species and isolated Pt nanoparticles in the nanohole areas of the cathode layer with different Pt/ionomer ratios, relevant to the degradation of PEFC catalysts.


Angewandte Chemie | 2017

Operando 3D Visualization of Migration and Degradation of a Platinum Cathode Catalyst in a Polymer Electrolyte Fuel Cell

Hirosuke Matsui; Nozomu Ishiguro; Tomoya Uruga; Oki Sekizawa; Kotaro Higashi; Naoyuki Maejima; Mizuki Tada

The three-dimensional (3D) distribution and oxidation state of a Pt cathode catalyst in a practical membrane electrode assembly (MEA) were visualized in a practical polymer electrolyte fuel cell (PEFC) under fuel-cell operating conditions. Operando 3D computed-tomography imaging with X-ray absorption near edge structure (XANES) spectroscopy (CT-XANES) clearly revealed the heterogeneous migration and degradation of Pt cathode catalyst in an MEA during accelerated degradation test (ADT) of PEFC. The degradative Pt migration proceeded over the entire cathode catalyst layer and spread to MEA depth direction into the Nafion membrane.


Topics in Catalysis | 2016

Spatially Non-Uniform Degradation of Pt/C Cathode Catalysts in Polymer Electrolyte Fuel Cells Imaged by Combination of Nano XAFS and STEM-EDS Techniques

Shinobu Takao; Oki Sekizawa; Gabor Samjeské; Shin-ichi Nagamatsu; Takuma Kaneko; Kotaro Higashi; Takashi Yamamoto; Kensaku Nagasawa; Xiao Zhao; Tomoya Uruga; Yasuhiro Iwasawa

This account article treats with spatially non-uniform degradation events of Pt/C cathode catalysts in polymer electrolyte fuel cells involving the formation and dissolution of positively charged Pt ions and detachment of metallic Pt nanoparticles/clusters, which were visualized by the same-view nano XAFS and STEM-EDS imaging technique under humid N2 atmosphere.


ACS Applied Materials & Interfaces | 2018

Observation of Degradation of Pt and Carbon Support in Polymer Electrolyte Fuel Cell Using Combined Nano-X-ray Absorption Fine Structure and Transmission Electron Microscopy Techniques

Shinobu Takao; Oki Sekizawa; Gabor Samjeské; Takuma Kaneko; Kotaro Higashi; Yusuke Yoshida; Xiao Zhao; Tomohiro Sakata; Takashi Yamamoto; Takao Gunji; Tomoya Uruga; Yasuhiro Iwasawa

It is hard to directly visualize spectroscopic and atomic-nanoscopic information on the degraded Pt/C cathode layer inside polymer electrolyte fuel cell (PEFC). However, it is mandatory to understand the preferential area, sequence, and relationship of the degradations of Pt nanoparticles and carbon support in the Pt/C cathode layer by directly observing the Pt/C cathode catalyst for the development of next-generation PEFC cathode catalysts. Here, the spectroscopic, chemical, and morphological visualization of the degradation of Pt/C cathode electrocatalysts in PEFC was performed successfully by a same-view combination technique of nano-X-ray absorption fine structure (XAFS) and transmission electron microscopy (TEM)/scanning TEM-energy-dispersive spectrometry (EDS) under a humid N2 atmosphere. The same-view nano-XAFS and TEM/STEM-EDS imaging of the Pt/C cathode of PEFC after triangular-wave 1.0-1.5 VRHE (startup/shutdown) accelerated durability test (tri-ADT) cycles elucidated the site-selective area, sequence, and relationship of the degradations of Pt nanoparticles and carbon support in the Pt/C cathode layer. The 10 tri-ADT cycles caused a carbon corrosion to reduce the carbon size preferentially in the boundary regions of the cathode layer with both electrolyte and holes/cracks, accompanied with detachment of Pt nanoparticles from the degraded carbon. After the decrease in the carbon size to less than 8 nm by the 20 tri-ADT cycles, Pt nanoparticles around the extremely corroded carbon areas were found to transform and dissolve into oxidized Pt2+-O4 species.


Journal of Physics: Conference Series | 2017

In-situ X-ray nano-CT System for Polymer Electrolyte Fuel Cells under Operating Conditions

Oki Sekizawa; Tomoya Uruga; Nozomu Ishiguro; Hirosuke Matsui; Kotaro Higashi; Tomohiro Sakata; Yasuhiro Iwasawa; Mizuki Tada

We developed two types of in-situ three-dimensional imaging systems on the basis of full-field transmission X-ray computed tomography (XCT) methods for polymer electrolyte fuel cells (PEFCs) under operating conditions at beamline BL36XU at SPring-8. One was for a wide field of view (more than 500 μm) to obtain the whole membrane electrode assembly (MEA) images, and the other was for nano spatial resolution (less than 100 nm) using a Fresnel zone plate as objective optics. We succeeded in in-situ three-dimensional visualization of an MEA in PEFC using both XCT measurement systems and show preliminary results.


Physical Chemistry Chemical Physics | 2014

Performance and durability of Pt/C cathode catalysts with different kinds of carbons for polymer electrolyte fuel cells characterized by electrochemical and in situ XAFS techniques.

Kensaku Nagasawa; Shinobu Takao; Kotaro Higashi; Shin-ichi Nagamatsu; Gabor Samjeské; Yoshiaki Imaizumi; Oki Sekizawa; Takashi Yamamoto; Tomoya Uruga; Yasuhiro Iwasawa


ACS Catalysis | 2017

Simultaneous Improvements in Performance and Durability of an Octahedral PtNix/C Electrocatalyst for Next-Generation Fuel Cells by Continuous, Compressive, and Concave Pt Skin Layers

Xiao Zhao; Shinobu Takao; Kotaro Higashi; Takuma Kaneko; Gabor Samjeské; Oki Sekizawa; Tomohiro Sakata; Yusuke Yoshida; Tomoya Uruga; Yasuhiro Iwasawa


Surface Science | 2016

Structural and Electronic Transformations of Pt/C, Pd@Pt(1 ML)/C and Pd@Pt(2 ML)/C Cathode Catalysts in Polymer Electrolyte Fuel Cells during Potential-step Operating Processes Characterized by In-situ Time-resolved XAFS

Shin-ichi Nagamatsu; Shinobu Takao; Gabor Samjeské; Kensaku Nagasawa; Oki Sekizawa; Takuma Kaneko; Kotaro Higashi; Tomoya Uruga; Sirshendu Gayen; Srihari Velaga; Milan K. Saniyal; Yasuhiro Iwasawa

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Oki Sekizawa

University of Electro-Communications

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Tomoya Uruga

University of Electro-Communications

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Yasuhiro Iwasawa

University of Electro-Communications

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Gabor Samjeské

University of Electro-Communications

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Shinobu Takao

University of Electro-Communications

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Takuma Kaneko

University of Electro-Communications

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Kensaku Nagasawa

University of Electro-Communications

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Shin-ichi Nagamatsu

University of Electro-Communications

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Tomohiro Sakata

University of Electro-Communications

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