MXene supported PtCo bimetallic catalyst for hydrogen evolution in acidic conditions
en-GBde-DEes-ESfr-FR

MXene supported PtCo bimetallic catalyst for hydrogen evolution in acidic conditions

06.05.2024 Frontiers Journals

Hydrogen energy is considered a promising solution with high energy density and zero pollution emissions. Currently, hydrogen is mainly derived from fossil fuels, which increases energy consumption and greenhouse gas emissions, hindering efforts to achieve carbon neutrality goals. Electrochemical water splitting using renewable energy is an environmentally sustainable method for hydrogen production. To improve hydrogen production efficiency and reduce energy consumption, it is necessary to find efficient hydrogen evolution reaction (HER) catalysts.

Platinum (Pt) group metals are commonly used as HER catalysts due to their excellent natural activity. However, the scarcity and high cost of these resources have limited widespread application. Increasing metal atom utilization to develop low-loading Pt catalysts is crucial. Recently, supported catalysts have been considered an effective approach to minimize the amount of precious metal loading and maintain their excellent activity. MXene materials, with their layered nanostructure, high conductivity, good hydrophilicity, and rich surface chemical properties, have found wide applications in catalysis.

A research group of Kai-Ling Zhou, Yang Yang, Yuhong Jin, Hao Wang from Beijing University of Technology and Institute of Deep-Sea Science and Engineering, Chinese Academy of Sciences fabricate small and highly dispersed PtCo bimetallic catalysts on MXene (PtCo/MXene) using a step-by-step reduction approach. They study HER electrocatalytic activity of PtCo/MXene in an acidic medium.

It is found that the introduction of Co species changed the electronic structure of the active site and promoted the catalytic performance of Pt precious metal in HER. The PtCo/MXene catalyst exhibits a superior HER activity with a low overpotential of 60 and 152 mV at current densities of −10 and −100 mA/cm2, respectively, and excellent working durability in the 0.5 mol/L H2SO4 medium. The PtCo/MXene catalyst possesses a considerable specific surface area and minimal charge transfer impedance. The DFT calculation shows that PtCo bimetal can promote the desorption of H* and promote the HER process in an acidic medium.

This work provides a valuable perspective to introduce low-load precious metals on MXene and guarantee its activity and stability.
DOI: 10.1007/s11708-024-0925-9

ARTICLE TITLE
MXene supported PtCo bimetallic catalyst for hydrogen evolution in acidic conditions
Angehängte Dokumente
  • Schematic diagram of preparation of PtCo/MXene by step-by-step reduction method.
06.05.2024 Frontiers Journals
Regions: Asia, China
Keywords: Science, Energy

Referenzen

We have used AlphaGalileo since its foundation but frankly we need it more than ever now to ensure our research news is heard across Europe, Asia and North America. As one of the UK’s leading research universities we want to continue to work with other outstanding researchers in Europe. AlphaGalileo helps us to continue to bring our research story to them and the rest of the world.
Peter Dunn, Director of Press and Media Relations at the University of Warwick
AlphaGalileo has helped us more than double our reach at SciDev.Net. The service has enabled our journalists around the world to reach the mainstream media with articles about the impact of science on people in low- and middle-income countries, leading to big increases in the number of SciDev.Net articles that have been republished.
Ben Deighton, SciDevNet
AlphaGalileo is a great source of global research news. I use it regularly.
Robert Lee Hotz, LA Times

Wir arbeiten eng zusammen mit...


  • BBC
  • The Times
  • National Geographic
  • The University of Edinburgh
  • University of Cambridge
Copyright 2024 by DNN Corp Terms Of Use Privacy Statement