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On the origin of the improved hydrogen evolution reaction in Mn- and Co-doped MoS2.
Orgiani, Pasquale; Braglia, Luca; Polewczyk, Vincent; Nie, Zhiwei; Lavini, Francesco; Punathum Chalil, Shyni; Chaluvadi, Sandeep Kumar; Rajak, Piu; Morabito, Floriana; Dobovicnik, Edvard; Foglietti, Vittorio; Torelli, Piero; Riedo, Elisa; Ciancio, Regina; Yang, Nan; Aruta, Carmela.
Afiliação
  • Orgiani P; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Braglia L; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Polewczyk V; Area Science Park, Padriciano 99, Trieste 34149, Italy.
  • Nie Z; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Lavini F; School of Physical Science and Technology, ShanghaiTech University, Shanghai 201210, China.
  • Punathum Chalil S; Tandon School of Engineering, New York University, New York, NY 11201, USA.
  • Chaluvadi SK; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Rajak P; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Morabito F; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Dobovicnik E; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Foglietti V; Area Science Park, Padriciano 99, Trieste 34149, Italy.
  • Torelli P; Department of Engineering and Architecture, University of Trieste, Trieste 34127, Italy.
  • Riedo E; CNR-SPIN, via del Fosso del Cavaliere 100, Roma 00133, Italy. carmela.aruta@spin.cnr.it.
  • Ciancio R; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
  • Yang N; Tandon School of Engineering, New York University, New York, NY 11201, USA.
  • Aruta C; CNR-IOM, Strada Statale 14, km 163, 5 Basovizza, Trieste 34149, Italy.
Nanoscale ; 16(25): 12237-12247, 2024 Jun 27.
Article em En | MEDLINE | ID: mdl-38847457
ABSTRACT
In the field of hydrogen production, MoS2 demonstrates good catalytic properties for the hydrogen evolution reaction (HER) which improve when doped with metal cations. However, while the role of sulfur atoms as active sites in the HER is largely reported, the role of metal atoms (i.e. molybdenum or the dopant cations) has yet to be studied in depth. To understand the role of the metal dopant, we study MoS2 thin films doped with Co and Mn ions. We identify the contribution of the electronic bands of the Mn and Co dopants to the integral valence band of the material using in situ resonant photoemission measurements. We demonstrate that Mn and Co dopants act differently Mn doping favors the shift of the S-Mo hybridized band towards the Fermi level, while in the case of Co doping it is the less hybridized Co band that shifts closer to the Fermi level. Doping with Mn increases the effectiveness of S as the active site, thus improving the HER, while doping with Co introduces the metallic site of Co as the active site, which is less effective in improving HER properties. We therefore clarify the role of the dopant cation in the electronic structure determining the active site for hydrogen adsorption/desorption. Our results pave the way for the design of efficient materials for hydrogen production via the doping route, which can be extended to different catalytic reactions in the field of energy applications.

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article

Texto completo: 1 Base de dados: MEDLINE Idioma: En Ano de publicação: 2024 Tipo de documento: Article