Development and Investigation of Manganese doped NiFe nanosheet Catalyst for Oxy...
Development and Investigation of Manganese doped NiFe nanosheet Catalyst for Oxygen Evolution Reaction
Water splitting is considered as one of the most attractive methods to store renewable energies, especially solar energy. Oxygen evolution reaction (OER) is a main bottleneck of the water splitting. Although hydroxides incorporati...
ver más
¿Tienes un proyecto y buscas un partner? Gracias a nuestro motor inteligente podemos recomendarte los mejores socios y ponerte en contacto con ellos. Te lo explicamos en este video
Proyectos interesantes
FANOEC
Fundamentals and Applications of Inorganic Oxygen Evolution...
2M€
Cerrado
ORRmetIR
Development and in situ Infrared study of Novel Strained Cor...
195K€
Cerrado
CarbonChem
Metal graphdiyne towards electrochemical water splitting
214K€
Cerrado
NASYCANE
NAnocasting SYnthesis of metal CArbide and Nitride Electroca...
213K€
Cerrado
ModCat4OER
Model Catalysts for understanding Oxygen Evolution Reaction...
163K€
Cerrado
carbodoH2
Transition metal carbides decoration of 3D graphene nanostru...
165K€
Cerrado
Información proyecto DIMCO
Duración del proyecto: 24 meses
Fecha Inicio: 2019-03-21
Fecha Fin: 2021-03-31
Fecha límite de participación
Sin fecha límite de participación.
Descripción del proyecto
Water splitting is considered as one of the most attractive methods to store renewable energies, especially solar energy. Oxygen evolution reaction (OER) is a main bottleneck of the water splitting. Although hydroxides incorporating both Ni and Fe have been intensively studied due to their promising activity for OER, the reaction mechanism and active catalysts are still under vigorous debate. We propose to introduce manganese (Mn) into monolayer of NiFe layered double hydroxide (LDH). We expect that Mn-induced synergistic electronic effect with Ni and Fe will lead to enhancement of OER activity. Moreover, we will probe the active sites of these catalysts using operando spectroscopic and microscopic techniques. The project will provide guidance for the design of a novel class of multi-component OER catalysts, as well as revolutionary analytical tools for operando characterization of electrocatalysts. The project includes a comprehensive training program to enhance the career perspectives of the fellow.