5
views
0
recommends
+1 Recommend
0 collections
    0
    shares
      • Record: found
      • Abstract: not found
      • Article: not found

      Amorphizing of Cu Nanoparticles toward Highly Efficient and Robust Electrocatalyst for CO 2 Reduction to Liquid Fuels with High Faradaic Efficiencies

      Read this article at

      ScienceOpenPublisherPubMed
      Bookmark
          There is no author summary for this article yet. Authors can add summaries to their articles on ScienceOpen to make them more accessible to a non-specialist audience.

          Related collections

          Most cited references58

          • Record: found
          • Abstract: not found
          • Article: not found

          New insights into the electrochemical reduction of carbon dioxide on metallic copper surfaces

            Bookmark
            • Record: found
            • Abstract: not found
            • Article: not found

            Electrocatalytic process of CO selectivity in electrochemical reduction of CO2 at metal electrodes in aqueous media

              Bookmark
              • Record: found
              • Abstract: found
              • Article: not found

              Aqueous CO2 reduction at very low overpotential on oxide-derived Au nanoparticles.

              Carbon dioxide reduction is an essential component of many prospective technologies for the renewable synthesis of carbon-containing fuels. Known catalysts for this reaction generally suffer from low energetic efficiency, poor product selectivity, and rapid deactivation. We show that the reduction of thick Au oxide films results in the formation of Au nanoparticles ("oxide-derived Au") that exhibit highly selective CO(2) reduction to CO in water at overpotentials as low as 140 mV and retain their activity for at least 8 h. Under identical conditions, polycrystalline Au electrodes and several other nanostructured Au electrodes prepared via alternative methods require at least 200 mV of additional overpotential to attain comparable CO(2) reduction activity and rapidly lose their activity. Electrokinetic studies indicate that the improved catalysis is linked to dramatically increased stabilization of the CO(2)(•-) intermediate on the surfaces of the oxide-derived Au electrodes.
                Bookmark

                Author and article information

                Contributors
                Journal
                Advanced Materials
                Adv. Mater.
                Wiley
                09359648
                April 2018
                April 2018
                February 23 2018
                : 30
                : 14
                : 1706194
                Affiliations
                [1 ]Key Laboratory of Automobile Materials; Ministry of Education; School of Materials Science and Engineering; Jilin University; Changchun 130022 China
                Article
                10.1002/adma.201706194
                29473227
                65a0dec7-cdf6-41df-942d-0bb2c16956db
                © 2018

                http://doi.wiley.com/10.1002/tdm_license_1.1

                http://onlinelibrary.wiley.com/termsAndConditions#vor

                History

                Comments

                Comment on this article

                scite_
                0
                0
                0
                0
                Smart Citations
                0
                0
                0
                0
                Citing PublicationsSupportingMentioningContrasting
                View Citations

                See how this article has been cited at scite.ai

                scite shows how a scientific paper has been cited by providing the context of the citation, a classification describing whether it supports, mentions, or contrasts the cited claim, and a label indicating in which section the citation was made.

                Similar content779

                Cited by103

                Most referenced authors672