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      Single-Atom Catalyst of Platinum Supported on Titanium Nitride for Selective Electrochemical Reactions

      , , , ,
      Angewandte Chemie International Edition
      Wiley-Blackwell

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          Abstract

          As a catalyst, single-atom platinum may provide an ideal structure for platinum minimization. Herein, a single-atom catalyst of platinum supported on titanium nitride nanoparticles were successfully prepared with the aid of chlorine ligands. Unlike platinum nanoparticles, the single-atom active sites predominantly produced hydrogen peroxide in the electrochemical oxygen reduction with the highest mass activity reported so far. The electrocatalytic oxidation of small organic molecules, such as formic acid and methanol, also exhibited unique selectivity on the single-atom platinum catalyst. A lack of platinum ensemble sites changed the reaction pathway for the oxygen-reduction reaction toward a two-electron pathway and formic acid oxidation toward direct dehydrogenation, and also induced no activity for the methanol oxidation. This work demonstrates that single-atom platinum can be an efficient electrocatalyst with high mass activity and unique selectivity.

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          Most cited references35

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          Materials for fuel-cell technologies.

          Fuel cells convert chemical energy directly into electrical energy with high efficiency and low emission of pollutants. However, before fuel-cell technology can gain a significant share of the electrical power market, important issues have to be addressed. These issues include optimal choice of fuel, and the development of alternative materials in the fuel-cell stack. Present fuel-cell prototypes often use materials selected more than 25 years ago. Commercialization aspects, including cost and durability, have revealed inadequacies in some of these materials. Here we summarize recent progress in the search and development of innovative alternative materials.
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            Triggering the electrocatalytic hydrogen evolution activity of the inert two-dimensional MoS2surface via single-atom metal doping

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              Enabling direct H2O2 production through rational electrocatalyst design

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                Author and article information

                Journal
                Angewandte Chemie International Edition
                Angew. Chem. Int. Ed.
                Wiley-Blackwell
                14337851
                February 05 2016
                February 05 2016
                : 55
                : 6
                : 2058-2062
                Article
                10.1002/anie.201509241
                26710326
                dea122ec-4e58-4227-8160-4528e0f3494d
                © 2016

                http://doi.wiley.com/10.1002/tdm_license_1

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