Sharma Devendra, Choudhary Priyanka, Kumar Sahil, Krishnan Venkata
School of Chemical Sciences and Advanced Materials Research Center, Indian Institute of Technology Mandi, Mandi, Himachal Pradesh, 175075, India.
Small. 2023 Mar;19(11):e2207053. doi: 10.1002/smll.202207053. Epub 2023 Jan 17.
Transition metal phosphides (TMP) posses unique physiochemical, geometrical, and electronic properties, which can be exploited for different catalytic applications, such as photocatalysis, electrocatalysis, organic catalysis, etc. Among others, the use of TMP for organic catalysis is less explored and still facing many complex challenges, which necessitate the development of sustainable catalytic reaction protocols demonstrating high selectivity and yield of the desired molecules of high significance. In this regard, the controlled synthesis of TMP-based catalysts and thorough investigations of underlying reaction mechanisms can provide deeper insights toward practical achievement of desired applications. This review aims at providing a comprehensive analysis on the recent advancements in the synthetic strategies for the tailored and tunable engineering of structural, geometrical, and electronic properties of TMP. In addition, their unprecedented catalytic potential toward different organic transformation reactions is succinctly summarized and critically analyzed. Finally, a rational perspective on future opportunities and challenges in the emerging field of organic catalysis is provided. On the account of the recent achievements accomplished in organic synthesis using TMP, it is highly anticipated that the use of TMP combined with advanced innovative technologies and methodologies can pave the way toward large scale realization of organic catalysis.
过渡金属磷化物(TMP)具有独特的物理化学、几何和电子性质,可用于不同的催化应用,如光催化、电催化、有机催化等。其中,TMP在有机催化方面的应用研究较少,仍面临许多复杂挑战,这就需要开发可持续的催化反应方案,以实现具有高选择性和高收率的高价值目标分子。在这方面,基于TMP的催化剂的可控合成以及对潜在反应机理的深入研究,能够为实现预期应用提供更深刻的见解。本综述旨在全面分析TMP结构、几何和电子性质的定制与可调工程合成策略的最新进展。此外,还简要总结并批判性分析了它们在不同有机转化反应中前所未有的催化潜力。最后,对有机催化新兴领域未来的机遇和挑战提供了合理的展望。鉴于近期在使用TMP进行有机合成方面取得的成果,人们高度期待将TMP与先进的创新技术和方法相结合,能够为大规模实现有机催化铺平道路。