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Dive into the research topics where Yoshihisa Furuya is active.

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Featured researches published by Yoshihisa Furuya.


Journal of Chemical Physics | 2014

Surface oxide growth on platinum electrode in aqueous trifluoromethanesulfonic acid

Yoshihisa Furuya; Tetsuya Mashio; Atsushi Ohma; Nilesh Dale; Kenzo Oshihara; Gregory Jerkiewicz

Platinum in the form of nanoparticles is the key and most expensive component of polymer electrolyte membrane fuel cells, while trifluoromethanesulfonic acid (CF3SO3H) is the smallest fluorinated sulfonic acid. Nafion, which acts as both electrolyte and separator in fuel cells, contains -CF2SO3H groups. Consequently, research on the electrochemical behaviour of Pt in aqueous CF3SO3H solutions creates important background knowledge that can benefit fuel cell development. In this contribution, Pt electro-oxidation is studied in 0.1 M aqueous CF3SO3H as a function of the polarization potential (E(p), 1.10 ≤ E(p) ≤ 1.50 V), polarization time (t(p), 10(0) ≤ t(p) ≤ 10(4) s), and temperature (T, 278 ≤ T ≤ 333 K). The critical thicknesses (X1), which determines the applicability of oxide growth theories, is determined and related to the oxide thickness (d(ox)). Because X1 > d(ox) for the entire range of E(p), t(p), and T values, the formation of Pt surface oxide follows the interfacial place-exchange or the metal cation escape mechanism. The mechanism of Pt electro-oxidation is revised and expanded by taking into account possible interactions of cations, anions, and water molecules with Pt. A modified kinetic equation for the interfacial place exchange is proposed. The application of the interfacial place-exchange and metal cation escape mechanisms leads to an estimation of the Pt(δ+)-O(δ-) surface dipole (μ(PtO)), and the potential drop (V(ox)) and electric field (E(ox)) within the oxide. The Pt-anion interactions affect the oxidation kinetics by indirectly influencing the electric field within the double layer and the surface oxide.


ACS Catalysis | 2015

Influence of Electrolyte Composition and pH on Platinum Electrochemical and/or Chemical Dissolution in Aqueous Acidic Media

Yoshihisa Furuya; Tetsuya Mashio; Atsushi Ohma; Min Tian; Farhad Kaveh; Diane Beauchemin; Gregory Jerkiewicz


Journal of Electroanalytical Chemistry | 2013

Relationship between gas transport resistance in the catalyst layer and effective surface area of the catalyst

Hiroshi Iden; Satoshi Takaichi; Yoshihisa Furuya; Tetsuya Mashio; Yoshitaka Ono; Atsushi Ohma


Archive | 2014

Catalyst, electrode catalyst layer using said catalyst, membrane electrode assembly, and fuel cell

Tetsuya Mashio; Yoshihisa Furuya; Ken Akizuki; Atsushi Ohma


ACS Catalysis | 2016

Influence of the Working and Counter Electrode Surface Area Ratios on the Dissolution of Platinum under Electrochemical Conditions

Min Tian; Christine Cousins; Diane Beauchemin; Yoshihisa Furuya; Atsushi Ohma; Gregory Jerkiewicz


Journal of Physical Chemistry C | 2018

How Stable Are Spherical Platinum Nanoparticles Applied to Fuel Cells

Sadaf Tahmasebi; Gregory Jerkiewicz; Stève Baranton; Christophe Coutanceau; Yoshihisa Furuya; Atsushi Ohma


Electrocatalysis | 2015

Thermodynamics of the Under-Potential Deposition of Hydrogen on Polycrystalline Platinum in Aqueous Trifluoromethanesulfonic Acid Solution

Yoshihisa Furuya; Tetsuya Mashio; Atsushi Ohma; Gregory Jerkiewicz


Meeting Abstracts | 2012

Effect of Ionomer Coverage on Pt-based Catalyst on ORR Activity

Yoshihisa Furuya; Hiroshi Iden; Tetsuya Mashio; Atsushi Ohma; Kazuhiko Shinohara


227th ECS Meeting (May 24-28, 2015) | 2015

Invited) Diagnostics of Microstructure and Properties of Polymer Electrolyte Fuel Cell Catalyst Layer

Atsushi Ohma; Tetsuya Mashio; Hiroshi Iden; Kazuyuki Sato; Yoshitaka Ono; Kei Sakai; Ken Akizuki; Yoshihisa Furuya; Kazuhiko Shinohara


Archive | 2014

CATALYST AND ELECTRODE CATALYST LAYER FOR FUEL CELL HAVING THE CATALYST

Tetsuya Mashio; Yoshihisa Furuya; Ken Akizuki; Atsushi Ohma; Takahiro Morishita; Yoshio Shodai

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Atsushi Ohma

Tokyo Institute of Technology

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Tetsuya Mashio

National Research Council

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Hiroshi Iden

Osaka Prefecture University

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Yoshitaka Ono

Tokyo Institute of Technology

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