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Enhancing the Electrochemical Activity of 2D Materials Edges through Oriented Electric Fields.


ABSTRACT: The edges of 2D materials have emerged as promising electrochemical catalyst systems, yet their performance still lags behind that of noble metals. Here, we demonstrate the potential of oriented electric fields (OEFs) to enhance the electrochemical activity of 2D materials edges. By atomically engineering the edge of a fluorographene/graphene/MoS2 heterojunction nanoribbon, strong and localized OEFs were realized as confirmed by simulations and spatially resolved spectroscopy. The observed fringing OEF results in an enhancement of the heterogeneous charge transfer rate between the edge and the electrolyte by 2 orders of magnitude according to impedance spectroscopy. Ab initio calculations indicate a field-induced decrease in the reactant adsorption energy as the origin of this improvement. We apply the OEF-enhanced edge reactivity to hydrogen evolution reactions (HER) and observe a significantly enhanced electrochemical performance, as evidenced by a 30% decrease in Tafel slope and a 3-fold enhanced turnover frequency. Our findings demonstrate the potential of OEFs for tailoring the catalytic properties of 2D material edges toward future complex reactions.

SUBMITTER: Wang H 

PROVIDER: S-EPMC11295188 | biostudies-literature | 2024 Jul

REPOSITORIES: biostudies-literature

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Enhancing the Electrochemical Activity of 2D Materials Edges through Oriented Electric Fields.

Wang Hao H   Chen Ding-Rui DR   Lin You-Chen YC   Lin Po-Han PH   Chang Jui-Teng JT   Muthu Jeyavelan J   Hofmann Mario M   Hsieh Ya-Ping YP  

ACS nano 20240716


The edges of 2D materials have emerged as promising electrochemical catalyst systems, yet their performance still lags behind that of noble metals. Here, we demonstrate the potential of oriented electric fields (OEFs) to enhance the electrochemical activity of 2D materials edges. By atomically engineering the edge of a fluorographene/graphene/MoS<sub>2</sub> heterojunction nanoribbon, strong and localized OEFs were realized as confirmed by simulations and spatially resolved spectroscopy. The obs  ...[more]

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