Javascript must be enabled to continue!
Ferrocene‐Boosted Nickel Sulfide Nanoarchitecture for Enhanced Alkaline Water Splitting
View through CrossRef
AbstractEnhanced electrocatalysts that are cost‐effective, durable, and derived from abundant resources are imperative for developing efficient and sustainable electrochemical water–splitting systems to produce hydrogen. Therefore, the design and development of non–noble–based catalysts with more environmentally sustainable alternatives in efficient alkaline electrolyzers are important. This work reports ferrocene (Fc)‐incorporated nickel sulfide nanostructured electrocatalysts (Fc−NiS) using a one–step facile solvothermal method for water–splitting reactions. Fc−NiS exhibited exceptional electrocatalytic activity under highly alkaline conditions, evident from its peak current density of 345 mA cm−2, surpassing the 153 mA cm−2 achieved by the pristine nickel sulfide (NiS) catalysts. Introducing ferrocene enhances electrical conductivity and facilitates charge transfer during water–splitting reactions, owing to the inclusion of iron metal. Fc−NiS exhibits a very small overpotential of 290 mV at 10 mA cm−2 and a Tafel slope of 50.46 mV dec−1, indicating its superior charge transfer characteristics for the three–electron transfer process involved in water splitting. This outstanding electrocatalytic performance is due to the synergistic effects embedded within the nanoscale architecture of Fc−NiS. Furthermore, the Fc−NiS catalyst also shows a stable response for the water–splitting reactions. It maintains a steady current density with an 87% retention rate for 25 hours of continuous operation, indicating its robustness and potential for prolonged electrolysis processes.
Title: Ferrocene‐Boosted Nickel Sulfide Nanoarchitecture for Enhanced Alkaline Water Splitting
Description:
AbstractEnhanced electrocatalysts that are cost‐effective, durable, and derived from abundant resources are imperative for developing efficient and sustainable electrochemical water–splitting systems to produce hydrogen.
Therefore, the design and development of non–noble–based catalysts with more environmentally sustainable alternatives in efficient alkaline electrolyzers are important.
This work reports ferrocene (Fc)‐incorporated nickel sulfide nanostructured electrocatalysts (Fc−NiS) using a one–step facile solvothermal method for water–splitting reactions.
Fc−NiS exhibited exceptional electrocatalytic activity under highly alkaline conditions, evident from its peak current density of 345 mA cm−2, surpassing the 153 mA cm−2 achieved by the pristine nickel sulfide (NiS) catalysts.
Introducing ferrocene enhances electrical conductivity and facilitates charge transfer during water–splitting reactions, owing to the inclusion of iron metal.
Fc−NiS exhibits a very small overpotential of 290 mV at 10 mA cm−2 and a Tafel slope of 50.
46 mV dec−1, indicating its superior charge transfer characteristics for the three–electron transfer process involved in water splitting.
This outstanding electrocatalytic performance is due to the synergistic effects embedded within the nanoscale architecture of Fc−NiS.
Furthermore, the Fc−NiS catalyst also shows a stable response for the water–splitting reactions.
It maintains a steady current density with an 87% retention rate for 25 hours of continuous operation, indicating its robustness and potential for prolonged electrolysis processes.
Related Results
Use of Formation Water and Associated Gases and their Simultaneous Utilization for Obtaining Microelement Concentrates Fresh Water and Drinking Water
Use of Formation Water and Associated Gases and their Simultaneous Utilization for Obtaining Microelement Concentrates Fresh Water and Drinking Water
Abstract Purpose: The invention relates to the oil industry, inorganic chemistry, in particular, to the methods of complex processing of formation water, using flare gas of oil and...
Study of High-sulfur Natural Gas Field Water Treatment
Study of High-sulfur Natural Gas Field Water Treatment
Abstract
High-sulfide gas field water with more than 100mg/L hydrogen sulfide account for 54.5% of gas wells in the Southern and Eastern gas fields of Sichuan, Ch...
Advances in the Synthesis and Biological Applications of Ferrocene–Conjugated Amino Acids, Carbohydrates, Cholesterol and Nucleobases: A Review
Advances in the Synthesis and Biological Applications of Ferrocene–Conjugated Amino Acids, Carbohydrates, Cholesterol and Nucleobases: A Review
Ferrocene, known for its aromaticity, lipophilicity, and stable redox properties, has emerged as a cornerstone in the design of functional molecules due to its unique chemical char...
Platinum-Group Element Geochemistry of Igneous Rocks in the Chongjiang Cu–Mo–Au Deposit, Southern Tibet: Implications for the Formation of Post-Collisional Porphyry Cu Deposits
Platinum-Group Element Geochemistry of Igneous Rocks in the Chongjiang Cu–Mo–Au Deposit, Southern Tibet: Implications for the Formation of Post-Collisional Porphyry Cu Deposits
Abstract
The timing and extent of sulfide saturation have been suggested as controlling factors in the formation of economically significant porphyry Cu deposits in ...
Molecular Logic Gates Based on Ferrocene-Containing Compounds
Molecular Logic Gates Based on Ferrocene-Containing Compounds
Ferrocene has a unique structure, i.e., a central iron atom neatly sandwiched between two cyclopentadienyl rings, which has revolutionized the chemists’ views about how metals bind...
Contrasting Geochemistry of Apatite from Peridotites and Sulfide Ores of the Jinchuan Ni-Cu Sulfide Deposit, NW China
Contrasting Geochemistry of Apatite from Peridotites and Sulfide Ores of the Jinchuan Ni-Cu Sulfide Deposit, NW China
Abstract
Apatite is present within both the hosting lherzolite and sulfide ore at the Jinchuan magmatic Ni-Cu sulfide deposit of northwest China. Apatite grains with...
Design and Optimization of Alkaline Flooding Formulations
Design and Optimization of Alkaline Flooding Formulations
Abstract
The state-of-the-art for alkaline flooding technology is the injection of combinations of alkalis with synthetic surfactants. Surfactant-enhanced alkaline f...
Sulfate/sulfide removal from wastewater by lab-scale microbial fuel cell
Sulfate/sulfide removal from wastewater by lab-scale microbial fuel cell
Sulfate/sulfide-containing wastewater is a widespread environmental contaminant resulting from human activities. These pollutants have negative impact on natural ecosystems and hum...

