Comprehensive analysis of MAX phase and MXene materials for advanced photocatalysis, electrocatalysis and adsorption in hydrogen evolution and storage
Reviewartikel, 2024

Over the past twenty-five years, MAX phases and their derivatives, MXenes, have become a focal point in materials research. These compounds seamlessly blend ceramic and metallic properties, offering high thermal and electrical conductivity, mechanical strength, low density, and resistance to extreme conditions. Their versatility positions them as promising candidates for diverse applications, particularly in advanced photo-catalysis and electro-catalysis for hydrogen evolution. Furthermore, MAX phases and MXenes are potential hydrogen storage materials, with unique structures that provide ample space for efficient hydrogen gas storage and release, vital for clean energy technologies like fuel cells. This review aims to comprehensively analyze their roles in photo-catalysis, electro-catalysis, and hydrogen storage, with a focus on their layered crystal structure. MAX phases integrate superior metal and ceramic attributes, while MXenes offer tunable electronic structures that enhance catalytic performance. Continued exploration is crucial to unlock their full potential, advancing clean energy technologies and beyond.

Adsorption

Hydrogen Evolution

MAX phase

Remarkable properties

Electrocatalysis

Photocatalysis

MXene

Författare

Jarosław Serafin

Institut de Nanociencia i Nanotecnologia

Universitat de Barcelona

Bartosz Dziejarski

Chalmers, Rymd-, geo- och miljövetenskap, Energiteknik

Politechnika Wrocławska

George Oindo Achieng

Maseno University

Xavier Vendrell

Universitat de Barcelona

Stefanos Chaitoglou

Institut de Nanociencia i Nanotecnologia

Universitat de Barcelona

Roger Amade-Rovira

Institut de Nanociencia i Nanotecnologia

Universitat de Barcelona

Journal of Industrial and Engineering Chemistry

1226-086X (ISSN) 22345957 (eISSN)

Vol. In Press

Ämneskategorier

Oorganisk kemi

Materialkemi

Styrkeområden

Materialvetenskap

DOI

10.1016/j.jiec.2024.07.023

Mer information

Senast uppdaterat

2024-07-29