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RuNi Nanoparticles Embedded in N‐Doped Carbon Nanofibers as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting
by
Zhu, Wendong
, Li, Meixuan
, Lu, Xiaofeng
, Wang, Huiyuan
, Wang, Ce
, Li, Weimo
in
bifunctional electrocatalysts
/ Bond strength
/ Carbon fibers
/ Communication
/ Communications
/ Electrolytes
/ electrospinning
/ Energy
/ Hydrogen
/ Nanomaterials
/ Nanoparticles
/ nitrogen‐doped carbon nanofibers
/ overall water splitting
/ Production capacity
/ RuNi nanoparticles
2020
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RuNi Nanoparticles Embedded in N‐Doped Carbon Nanofibers as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting
by
Zhu, Wendong
, Li, Meixuan
, Lu, Xiaofeng
, Wang, Huiyuan
, Wang, Ce
, Li, Weimo
in
bifunctional electrocatalysts
/ Bond strength
/ Carbon fibers
/ Communication
/ Communications
/ Electrolytes
/ electrospinning
/ Energy
/ Hydrogen
/ Nanomaterials
/ Nanoparticles
/ nitrogen‐doped carbon nanofibers
/ overall water splitting
/ Production capacity
/ RuNi nanoparticles
2020
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Do you wish to request the book?
RuNi Nanoparticles Embedded in N‐Doped Carbon Nanofibers as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting
by
Zhu, Wendong
, Li, Meixuan
, Lu, Xiaofeng
, Wang, Huiyuan
, Wang, Ce
, Li, Weimo
in
bifunctional electrocatalysts
/ Bond strength
/ Carbon fibers
/ Communication
/ Communications
/ Electrolytes
/ electrospinning
/ Energy
/ Hydrogen
/ Nanomaterials
/ Nanoparticles
/ nitrogen‐doped carbon nanofibers
/ overall water splitting
/ Production capacity
/ RuNi nanoparticles
2020
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RuNi Nanoparticles Embedded in N‐Doped Carbon Nanofibers as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting
Journal Article
RuNi Nanoparticles Embedded in N‐Doped Carbon Nanofibers as a Robust Bifunctional Catalyst for Efficient Overall Water Splitting
2020
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Overview
Developing high‐performance, low‐cost, and robust bifunctional electrocatalysts for overall water splitting is extremely indispensable and challenging. It is a promising strategy to couple highly active precious metals with transition metals as efficient electrocatalysts, which can not only effectively reduce the cost of the preparation procedure, but also greatly improve the performance of catalysts through a synergistic effect. Herein, Ru and Ni nanoparticles embedded within nitrogen‐doped carbon nanofibers (RuNi‐NCNFs) are synthesized via a simple electrospinning technology with a subsequent carbonization process. The as‐formed RuNi‐NCNFs represent excellent Pt‐like electrocatalytic activity for the hydrogen evolution reaction (HER) in both alkaline and acidic conditions. Furthermore, the RuNi‐NCNFs also exhibit an outstanding oxygen evolution reaction (OER) activity with an overpotential of 290 mV to achieve a current density of 10 mA cm−2 in alkaline electrolyte. Strikingly, owing to both the HER and OER performance, an electrolyzer with RuNi‐NCNFs as both the anode and cathode catalysts requires only a cell voltage of 1.564 V to drive a current density of 10 mA cm−2 in an alkaline medium, which is lower than the benchmark of Pt/C||RuO2 electrodes. This study opens a novel avenue toward the exploration of high efficient but low‐cost electrocatalysts for overall water splitting. A facile strategy based on electrospinning and a postcarbonization process is demonstrated to prepare carbon nanofibers incorporating Ru and Ni nanoparticles, which exhibits admirable Pt‐like hydrogen evolution reaction activity and superior oxygen evolution reaction performance. The electrolyzer with this hybrid as both anode and cathode displays a remarkable electrocatalytic activity and outstanding long‐term durability, which outperforms the commercial Pt/C||RuO2 electrocatalyst.
Publisher
John Wiley & Sons, Inc,John Wiley and Sons Inc,Wiley
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