Sahoo Sanjubala, Wickramathilaka Kaveendra Y, Njeri Elsa, Silva Dilshan, Suib Steven L
Department of Materials Science and Engineering, Institute of Materials Science, University of Connecticut, Storrs, CT, United States.
Department of Chemistry, University of Connecticut, Storrs, CT, United States.
Front Chem. 2024 May 17;12:1374878. doi: 10.3389/fchem.2024.1374878. eCollection 2024.
Transition Metal Oxides (TMOs) have drawn significant attention due to their diverse range of properties and applications. The partially filled orbitals of the transition metal ions, with highly electronegative oxygen atoms, give rise to unique electronic structures that lead to multiple applications due to their magnetic, optical, and structural properties. These properties have a direct influence on chemical reactions that enable tailoring materials for specific applications in catalysis, such as electrocatalysis and photocatalysis. While the potential of TMOs is promising, their development for enhanced functional properties poses numerous challenges. Among these challenges, identifying the appropriate synthesis processes and employing optimal characterization techniques are crucial. In this comprehensive review, an overview of recent trends and challenges in the synthesis and characterization of highly functional TMOs as well as ceramics will be covered with emphasis on catalytic applications. Mesoporous materials play a key role in augmenting their functionality for various applications and will be covered. Ab-initio modeling aspects for the design and development of novel TMO will be also discussed.
过渡金属氧化物(TMOs)因其多样的性质和应用而备受关注。过渡金属离子的部分填充轨道与电负性高的氧原子相结合,产生了独特的电子结构,由于其磁性、光学和结构性质而导致了多种应用。这些性质对化学反应有直接影响,从而能够定制用于催化等特定应用的材料,如电催化和光催化。虽然TMOs的潜力很有前景,但要开发出具有增强功能性质的TMOs却面临诸多挑战。在这些挑战中,确定合适的合成工艺和采用最佳的表征技术至关重要。在这篇全面的综述中,将涵盖高功能TMOs以及陶瓷在合成和表征方面的最新趋势和挑战,并重点关注催化应用。介孔材料在增强其各种应用的功能方面起着关键作用,也将进行讨论。还将讨论新型TMO设计和开发的从头算建模方面。