Javascript must be enabled to continue!
Encapsulating Transition Metal Nanoparticles inside Carbon (TM@C) Chainmail Catalysts for Hydrogen Evolution Reactions: A Review
View through CrossRef
Green hydrogen energy from electrocatalytic hydrogen evolution reactions (HERs) has gained much attention for its advantages of low carbon, high efficiency, interconnected energy medium, safety, and controllability. Non-precious metals have emerged as a research hotspot for replacing precious metal catalysts due to low cost and abundant reserves. However, maintaining the stability of non-precious metals under harsh conditions (e.g., strongly acidic, alkaline environments) remains a significant challenge. By leveraging the curling properties of two-dimensional materials, a new class of catalysts, encapsulating transition metal nanoparticles inside carbon (TM@C) chainmail, has been successfully developed. This catalyst can effectively isolate the active metal from direct contact with harsh reaction media, thereby delaying catalyst deactivation. Furthermore, the electronic structure of the carbon layer can be regulated through the transfer of electrons, which stimulates its catalytic activity. This addresses the issue of the insufficient stability of traditional non-precious metal catalysts. This review commences with a synopsis of the synthetic advancement of the engineering of TM@C chainmail catalysts. Thereafter, a critical discussion ensues regarding the electrocatalytic performance of TM@C chainmail catalysts during hydrogen production. Ultimately, a comprehensive review of the conformational relationship between the structure of TM@C chainmail catalysts and HER activity is provided, offering substantial support for the large-scale application of hydrogen energy.
Title: Encapsulating Transition Metal Nanoparticles inside Carbon (TM@C) Chainmail Catalysts for Hydrogen Evolution Reactions: A Review
Description:
Green hydrogen energy from electrocatalytic hydrogen evolution reactions (HERs) has gained much attention for its advantages of low carbon, high efficiency, interconnected energy medium, safety, and controllability.
Non-precious metals have emerged as a research hotspot for replacing precious metal catalysts due to low cost and abundant reserves.
However, maintaining the stability of non-precious metals under harsh conditions (e.
g.
, strongly acidic, alkaline environments) remains a significant challenge.
By leveraging the curling properties of two-dimensional materials, a new class of catalysts, encapsulating transition metal nanoparticles inside carbon (TM@C) chainmail, has been successfully developed.
This catalyst can effectively isolate the active metal from direct contact with harsh reaction media, thereby delaying catalyst deactivation.
Furthermore, the electronic structure of the carbon layer can be regulated through the transfer of electrons, which stimulates its catalytic activity.
This addresses the issue of the insufficient stability of traditional non-precious metal catalysts.
This review commences with a synopsis of the synthetic advancement of the engineering of TM@C chainmail catalysts.
Thereafter, a critical discussion ensues regarding the electrocatalytic performance of TM@C chainmail catalysts during hydrogen production.
Ultimately, a comprehensive review of the conformational relationship between the structure of TM@C chainmail catalysts and HER activity is provided, offering substantial support for the large-scale application of hydrogen energy.
Related Results
Antimicrobial activity of ciprofloxacin-coated gold nanoparticles on selected pathogens
Antimicrobial activity of ciprofloxacin-coated gold nanoparticles on selected pathogens
Antibiotic resistance amongst bacterial pathogens is a crisis that has been worsening over recent decades, resulting in serious and often fatal infections that cannot be treated by...
Preparation and Characterization of Carbon-Encapsulated Iron Nanoparticles and Its Application for Core-Shell Type of Catalyst
Preparation and Characterization of Carbon-Encapsulated Iron Nanoparticles and Its Application for Core-Shell Type of Catalyst
Introduction
Spherical iron oxide and carbon-encapsulated iron nanoparticles have been prepared by ultrasonic irradiation followed by annealing at various temperatur...
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization and semi-synthesis of natural products dimeric amide alkaloids
Isolation, characterization of natural products dimeric amide alkaloids from roots of the Piper chaba Hunter. The synthesis of these products using intermolecular [4+2] cycloaddit...
(Digital Presentation) Ternary Nifetiooh Catalyst for the Oxygen Evolution Reaction: Study of the Effect of the Addition of Ti at Different Loadings
(Digital Presentation) Ternary Nifetiooh Catalyst for the Oxygen Evolution Reaction: Study of the Effect of the Addition of Ti at Different Loadings
Ternary NiFeTiOOH Catalyst for the Oxygen Evolution Reaction: Study of the Effect of the Addition of Ti at Different Loadings
Wenjamin Moschkowitsch and Lior Elbaz
...
Control and impact of metal nanoparticle location in bifunctional catalysts for hydrocarbon conversion
Control and impact of metal nanoparticle location in bifunctional catalysts for hydrocarbon conversion
The goal of the research described in this thesis was to study the amount of noble metals
required in bifunctional catalysts for hydroconversion by tuning the nanoparticle
location...
The hydrogen economy: challenges and prospectives
The hydrogen economy: challenges and prospectives
The fossil fuels-based economy led to considerable growth in CO2 footprint and air pollution. The shift toward renewable and green energy sources is necessary and a hydrogen-based ...
“Nouvelle-Aquitaine” Region : The birth of natural hydrogen exploration in France ?
“Nouvelle-Aquitaine” Region : The birth of natural hydrogen exploration in France ?
As a pioneer, 45-8 ENERGY focuses on exploring and producing eco-responsible industrial gases: helium and natural hydrogen. , as well as the resources that can be associated with.H...
Challenges and Opportunities in Preparing Fe-N-C Layers Supported on Non-Carbon Supports
Challenges and Opportunities in Preparing Fe-N-C Layers Supported on Non-Carbon Supports
Global energy demand will be continuously rising in the foreseeable future. To mitigate the results of climate change it is necessary to reduce the emittance of greenhouse gases. O...

