Qin Hong, He Yangzhuo, Xu Piao, Huang Danlian, Wang Ziwei, Wang Han, Wang Zixuan, Zhao Yin, Tian Quyang, Wang Changlin
College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control, Ministry of Education, Hunan University, Changsha 410082, PR China.
College of Environmental Science and Engineering, Hunan University, Changsha 410082, PR China; Key Laboratory of Environmental Biology and Pollution Control, Ministry of Education, Hunan University, Changsha 410082, PR China..
Adv Colloid Interface Sci. 2021 Aug;294:102486. doi: 10.1016/j.cis.2021.102486. Epub 2021 Jul 7.
To develop efficient catalysts is one of the major ways to solve the energy and environmental problems. Spinel ferrites, with the general chemical formula of MFeO (where M = Mg, Co, Ni, Zn, Fe, Mn, etc.), have attracted considerable attention in catalytic research. The flexible position and valence variability of metal cations endow spinel ferrites with diverse physicochemical properties, such as abundant surface active sites, high catalytic activity and easy to be modified. Meanwhile, their unique advantages in regenerating and recycling on account of the magnetic performances facilitate their practical application potential. Herein, the conventional as well as green chemistry synthesis of spinel ferrites is reviewed. Most importantly, the critical pathways to improve the catalytic performance are discussed in detail, mainly covering selective doping, site substitution, structure reversal, defect introduction and coupled composites. Furthermore, the catalytic applications of spinel ferrites and their derivative composites are exclusively reviewed, including Fenton-type catalysis, photocatalysis, electrocatalysis and photoelectro-chemical catalysis. In addition, some vital remarks, including toxicity, recovery and reuse, are also covered. Future applications of spinel ferrites are envisioned focusing on environmental and energy issues, which will be pushed by the development of precise synthesis, skilled modification and advanced characterization along with emerging theoretical calculation.
开发高效催化剂是解决能源和环境问题的主要途径之一。尖晶石铁氧体,其通式为MFeO(其中M = Mg、Co、Ni、Zn、Fe、Mn等),在催化研究中引起了相当大的关注。金属阳离子灵活的位置和价态变化赋予尖晶石铁氧体多种物理化学性质,如丰富的表面活性位点、高催化活性且易于改性。同时,由于其磁性能,它们在再生和循环利用方面的独特优势有利于其实际应用潜力。在此,综述了尖晶石铁氧体的传统合成方法以及绿色化学合成方法。最重要的是,详细讨论了提高催化性能的关键途径,主要包括选择性掺杂、位点取代、结构反转、缺陷引入和复合耦合。此外,还专门综述了尖晶石铁氧体及其衍生复合材料的催化应用,包括芬顿型催化、光催化、电催化和光电化学催化。此外,还涵盖了一些重要的要点,包括毒性、回收和再利用。展望尖晶石铁氧体未来的应用将聚焦于环境和能源问题,随着精确合成、熟练改性和先进表征以及新兴理论计算的发展,这些应用将得到推动。