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Effect of Interlayer Spacing on the Activity of Layered Manganese Oxide Bilayer Catalysts for the Oxygen Evolution Reaction.
Kang, Qing; Vernisse, Loranne; Remsing, Richard C; Thenuwara, Akila C; Shumlas, Samantha L; McKendry, Ian G; Klein, Michael L; Borguet, Eric; Zdilla, Michael J; Strongin, Daniel R.
Affiliation
  • Kang Q; Department of Chemistry, Temple University , Beury Hall, 1901 North 13th Street, Philadelphia, Pennsylvania 19122, United States.
  • Vernisse L; Center for the Computational Design of Functional Layered Materials (CCDM), Temple University , Philadelphia, Pennsylvania 19122, United States.
  • Remsing RC; Department of Chemistry, Temple University , Beury Hall, 1901 North 13th Street, Philadelphia, Pennsylvania 19122, United States.
  • Thenuwara AC; Center for the Computational Design of Functional Layered Materials (CCDM), Temple University , Philadelphia, Pennsylvania 19122, United States.
  • Shumlas SL; Department of Chemistry, Temple University , Beury Hall, 1901 North 13th Street, Philadelphia, Pennsylvania 19122, United States.
  • McKendry IG; Center for the Computational Design of Functional Layered Materials (CCDM), Temple University , Philadelphia, Pennsylvania 19122, United States.
  • Klein ML; Institute for Computational Molecular Science, Temple University , SERC, 1925 North 12th Street, Philadelphia, Pennsylvania 19122, United States.
  • Borguet E; Department of Chemistry, Temple University , Beury Hall, 1901 North 13th Street, Philadelphia, Pennsylvania 19122, United States.
  • Zdilla MJ; Center for the Computational Design of Functional Layered Materials (CCDM), Temple University , Philadelphia, Pennsylvania 19122, United States.
  • Strongin DR; Department of Chemistry, Temple University , Beury Hall, 1901 North 13th Street, Philadelphia, Pennsylvania 19122, United States.
J Am Chem Soc ; 139(5): 1863-1870, 2017 02 08.
Article in En | MEDLINE | ID: mdl-28085268
ABSTRACT
We investigated the dependence of the electrocatalytic activity for the oxygen evolution reaction (OER) on the interlayer distance of five compositionally distinct layered manganese oxide nanostructures. Each individual electrocatalyst was assembled with a different alkali metal intercalated between two nanosheets (NS) of manganese oxide to form a bilayer structure. Manganese oxide NS were synthesized via the exfoliation of a layered material, birnessite. Atomic force microscopy was used to determine the heights of the bilayer catalysts. The interlayer spacing of the supported bilayers positively correlates with the size of the alkali cation NS/Cs+/NS > NS/Rb+/NS > NS/K+/NS > NS/Na+/NS > NS/Li+/NS. The thermodynamic origins of these bilayer heights were investigated using molecular dynamics simulations. The overpotential (η) for the OER correlates with the interlayer spacing; NS/Cs+/NS has the lowest η (0.45 V), while NS/Li+/NS exhibits the highest η (0.68 V) for OER at a current density of 1 mA/cm2. Kinetic parameters (η and Tafel slope) associated with NS/Cs+/NS for the OER were superior to that of the bulk birnessite phase, highlighting the structural uniqueness of these nanoscale assemblies.

Full text: 1 Database: MEDLINE Language: En Year: 2017 Type: Article

Full text: 1 Database: MEDLINE Language: En Year: 2017 Type: Article