Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

Exploring Metal Oxides Nanostructures for Sustainable Hydrogen Evolution via Indoor Electrocatalytic Water Splitting

View through CrossRef
The widespread adoption of green hydrogen production plays a pivotal role in establishing a sustainable circular economy. A major challenge lies in the efficient production of hydrogen to meet the demands of commercial scale applications. Hydrogen production through water electrolysis is an effective method to utilize surplus renewable energy efficiently, offering advantages in energy conversion and storage, where catalysis or electrocatalysis plays a pivotal role. The development of active, cost effective, and stable catalysts or electrocatalysts is a critical prerequisite for efficient electrocatalytic hydrogen production from water splitting for practical applications, which is primary focus of this review. On the one hand, precious metals are commonly utilized to investigate the two half-cell reactions namely the HER and OER. However, the use of precious metals such as Au, Ag, Pt, Ru, as electrocatalysts, is limited by their cost and less availability, hindering their practical application. In contrast, non-precious metal-based electrocatalysts are abundant, environmentally friendly, and low-cost, which demonstrating high electrical conductivity and electrocatalytic performance comparable to noble metals. Thus, these electrocatalysts have the potential to replace precious metals in the water electrolysis process. In this review, we present key fundamental insights into water electrolysis, which not only enables higher hydrogen production but is also cost-effective.
Title: Exploring Metal Oxides Nanostructures for Sustainable Hydrogen Evolution via Indoor Electrocatalytic Water Splitting
Description:
The widespread adoption of green hydrogen production plays a pivotal role in establishing a sustainable circular economy.
A major challenge lies in the efficient production of hydrogen to meet the demands of commercial scale applications.
Hydrogen production through water electrolysis is an effective method to utilize surplus renewable energy efficiently, offering advantages in energy conversion and storage, where catalysis or electrocatalysis plays a pivotal role.
The development of active, cost effective, and stable catalysts or electrocatalysts is a critical prerequisite for efficient electrocatalytic hydrogen production from water splitting for practical applications, which is primary focus of this review.
On the one hand, precious metals are commonly utilized to investigate the two half-cell reactions namely the HER and OER.
However, the use of precious metals such as Au, Ag, Pt, Ru, as electrocatalysts, is limited by their cost and less availability, hindering their practical application.
In contrast, non-precious metal-based electrocatalysts are abundant, environmentally friendly, and low-cost, which demonstrating high electrical conductivity and electrocatalytic performance comparable to noble metals.
Thus, these electrocatalysts have the potential to replace precious metals in the water electrolysis process.
In this review, we present key fundamental insights into water electrolysis, which not only enables higher hydrogen production but is also cost-effective.

Related Results

Analysis of Electrocatalytic Performance of Nanostructured MoS2 in Hydrogen Evolution Reaction
Analysis of Electrocatalytic Performance of Nanostructured MoS2 in Hydrogen Evolution Reaction
Abstract: Recently, renewable and non-conventional energy production methods have been getting widespread attention. Fast research progress in establishing green energy indicates ...
Unravelling indoor temperature response to summer heat through long-term crowdsourced observations in Dutch residences
Unravelling indoor temperature response to summer heat through long-term crowdsourced observations in Dutch residences
City dwellers are increasingly exposed to summer heat due to climate change and urbanization. Summer heat, which causes heat stress, is intensified especially at night in urban are...
Triboelectric Nanogenerator Drives Electrochemical Water Splitting for Hydrogen Production: Fundamentals, Progress, and Challenges
Triboelectric Nanogenerator Drives Electrochemical Water Splitting for Hydrogen Production: Fundamentals, Progress, and Challenges
AbstractCurrently, triboelectric nanogenerators (TENGs) are drawing significant attention owing to their potential in harvesting wave and wind energy from environment as well as th...
“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...
Research progress of hydrogen tunneling in two-dimensional materials
Research progress of hydrogen tunneling in two-dimensional materials
One-atom-thick material such as graphene, graphene derivatives and graphene-like materials, usually has a dense network lattice structure and therefore dense distribution of electr...
The indoor mycobiome of daycare centers is affected by occupancy and climate
The indoor mycobiome of daycare centers is affected by occupancy and climate
AbstractMany children spend considerable time in daycare centers and may here be influenced by indoor microorganisms, including fungi. In this study, we investigate the indoor myco...

Back to Top