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Chemical Dopants on Edge of Holey Graphene Accelerate Electrochemical Hydrogen Evolution Reaction.
Kumatani, Akichika; Miura, Chiho; Kuramochi, Hirotaka; Ohto, Tatsuhiko; Wakisaka, Mitsuru; Nagata, Yuki; Ida, Hiroki; Takahashi, Yasufumi; Hu, Kailong; Jeong, Samuel; Fujita, Jun-Ichi; Matsue, Tomokazu; Ito, Yoshikazu.
Afiliação
  • Kumatani A; WPI Advanced Institute for Materials Research (AIMR) Tohoku University Sendai 980-8577 Japan.
  • Miura C; Graduate School of Environmental Studies Tohoku University Sendai 980-856 Japan.
  • Kuramochi H; Graduate School of Environmental Studies Tohoku University Sendai 980-856 Japan.
  • Ohto T; Institute of Applied Physics Graduate School of Pure and Applied Sciences University of Tsukuba Tsukuba 305-8573 Japan.
  • Wakisaka M; Graduate School of Engineering Science Osaka University 1-3 Machikaneyama Toyonaka 560-8531 Japan.
  • Nagata Y; Graduate School of Engineering Toyama Prefectural University 5180 Kurokawa Imizu Toyama 939-0398 Japan.
  • Ida H; Max Planck Institute for Polymer Research Ackermannweg 10 55128 Mainz Germany.
  • Takahashi Y; Graduate School of Environmental Studies Tohoku University Sendai 980-856 Japan.
  • Hu K; PRESTO Japan Science and Technology Agency Saitama 332-0012 Japan.
  • Jeong S; Division of Electrical Engineering and Computer Science Kanazawa University Kanazawa 920-1192 Japan.
  • Fujita JI; Institute of Applied Physics Graduate School of Pure and Applied Sciences University of Tsukuba Tsukuba 305-8573 Japan.
  • Matsue T; Institute of Applied Physics Graduate School of Pure and Applied Sciences University of Tsukuba Tsukuba 305-8573 Japan.
  • Ito Y; Institute of Applied Physics Graduate School of Pure and Applied Sciences University of Tsukuba Tsukuba 305-8573 Japan.
Adv Sci (Weinh) ; 6(10): 1900119, 2019 May 17.
Article em En | MEDLINE | ID: mdl-31131204
Carbon-based metal-free catalysts for the hydrogen evolution reaction (HER) are essential for the development of a sustainable hydrogen society. Identification of the active sites in heterogeneous catalysis is key for the rational design of low-cost and efficient catalysts. Here, by fabricating holey graphene with chemically dopants, the atomic-level mechanism for accelerating HER by chemical dopants is unveiled, through elemental mapping with atomistic characterizations, scanning electrochemical cell microscopy (SECCM), and density functional theory (DFT) calculations. It is found that the synergetic effects of two important factors-edge structure of graphene and nitrogen/phosphorous codoping-enhance HER activity. SECCM evidences that graphene edges with chemical dopants are electrochemically very active. Indeed, DFT calculation suggests that the pyridinic nitrogen atom could be the catalytically active sites. The HER activity is enhanced due to phosphorus dopants, because phosphorus dopants promote the charge accumulations on the catalytically active nitrogen atoms. These findings pave a path for engineering the edge structure of graphene in graphene-based catalysts.
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Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2019 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Tipo de estudo: Prognostic_studies Idioma: En Ano de publicação: 2019 Tipo de documento: Article