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

Oxygen Electrocatalysis by Transition Metal Nitrides: History, Current Trends and Future Prospects

View through CrossRef
Abstract The oxygen reduction and evolution reactions are considered the bottleneck in many electrochemical devices, i. e., fuel cells, water electrolyzers, and metal‐air batteries. The continuous focus has been on inventing and exploring cost‐effective and robust electrocatalysts. Few developed non‐precious metal/metal‐free materials, in fact, outperformed state‐of‐the‐art catalysts during the half‐cell study. However, most of these materials show limited activity during the full cell demonstration, restricting their deployment in commercial energy devices. In this direction, transition metal nitrides (TMNs) have emerged as a potential alternative with peculiar electronic properties and the ease of tuning their intrinsic as well as extrinsic properties. High hardness, refractory nature, d‐band modulation ability and comparatively lower energy for the nitride formation are the other motivations to explore their effectiveness in oxygen electrocatalysis. Considering this, the minireview attempts first to present the properties of catalytic interest, followed by the most viable synthesis approaches in nanoengineering of the TMNs. Next, we provide key trends toward catalytic property modulation for oxygen electrocatalysis, the role of TMNs as potential catalytic support, followed by the effect of TMNs′ in situ autoxidation on the performance. Finally, we state the current limitations of TMNs toward oxygen electrocatalysis, followed by our vision for further advancements.
Title: Oxygen Electrocatalysis by Transition Metal Nitrides: History, Current Trends and Future Prospects
Description:
Abstract The oxygen reduction and evolution reactions are considered the bottleneck in many electrochemical devices, i.
 e.
, fuel cells, water electrolyzers, and metal‐air batteries.
The continuous focus has been on inventing and exploring cost‐effective and robust electrocatalysts.
Few developed non‐precious metal/metal‐free materials, in fact, outperformed state‐of‐the‐art catalysts during the half‐cell study.
However, most of these materials show limited activity during the full cell demonstration, restricting their deployment in commercial energy devices.
In this direction, transition metal nitrides (TMNs) have emerged as a potential alternative with peculiar electronic properties and the ease of tuning their intrinsic as well as extrinsic properties.
High hardness, refractory nature, d‐band modulation ability and comparatively lower energy for the nitride formation are the other motivations to explore their effectiveness in oxygen electrocatalysis.
Considering this, the minireview attempts first to present the properties of catalytic interest, followed by the most viable synthesis approaches in nanoengineering of the TMNs.
Next, we provide key trends toward catalytic property modulation for oxygen electrocatalysis, the role of TMNs as potential catalytic support, followed by the effect of TMNs′ in situ autoxidation on the performance.
Finally, we state the current limitations of TMNs toward oxygen electrocatalysis, followed by our vision for further advancements.

Related Results

High Concentration Oxygen and Hypercapnia in Respiratory Disease
High Concentration Oxygen and Hypercapnia in Respiratory Disease
<p>Oxygen-induced elevations in arterial carbon dioxide tension have been demonstrated in patients with chronic obstructive pulmonary disease (COPD), asthma, pneumonia, obesi...
Closed-Loop Oxygen Control
Closed-Loop Oxygen Control
<p>Guidelines recommend that oxygen should be titrated to achieve a target oxygen saturation (SpO2 ) range in acutely unwell patients, a concept colloquially known as “swimmi...
Nitrides
Nitrides
AbstractNitrides may be classified as being ionic or salt‐like, metallic, nonmetallic (diamond‐like) or volatile. The properties of transition‐metal metallic nitrides and the diamo...
Recent Progress on Transition Metal Nitrides Nanoparticles as Heterogeneous Catalysts
Recent Progress on Transition Metal Nitrides Nanoparticles as Heterogeneous Catalysts
This short review aims at providing an overview of the most recent literature regarding transition metal nitrides (TMN) applied in heterogeneous catalysis. These materials have rec...
Fertility Transition Across Major Sub-Saharan African Cities: The Role of Proximate Determinants
Fertility Transition Across Major Sub-Saharan African Cities: The Role of Proximate Determinants
Abstract Background Sub-Saharan Africa’s fertility transition has lagged behind other regions despite rapid urbanization, resulting in persistently high fertility rates. S...
STABILITY OF TWO–DIMENSIONAL SURFACE NITRIDES ON TRANSITION METAL ALLOY SURFACES
STABILITY OF TWO–DIMENSIONAL SURFACE NITRIDES ON TRANSITION METAL ALLOY SURFACES
The thermal stability of the two-dimensional surface nitrides CrN, MoN and WN has been studied on transition metal alloy surfaces. The surface nitrides are obtained by means of cos...
Advanced Low-Dimensional Carbon Nanomaterials for Oxygen Electrocatalysis
Advanced Low-Dimensional Carbon Nanomaterials for Oxygen Electrocatalysis
Amid rising global energy demand and worsening environmental pollution, there is an urgent need for efficient energy storage and conversion technologies. Oxygen electrocatalytic re...
Transition Metal Oxyfluorides for Next‐Generation Rechargeable Batteries
Transition Metal Oxyfluorides for Next‐Generation Rechargeable Batteries
AbstractTransition metal oxyfluorides are attracting much attention for next‐generation rechargeable batteries, including lithium‐ion batteries and those beyond lithium‐ion batteri...

Back to Top