Meng Zihan, Zheng Shuhong, Luo Ren, Tang Haibo, Wang Rui, Zhang Ruiming, Tian Tian, Tang Haolin
Foshan Xianhu Laboratory of the Advanced Energy Science and Technology Guangdong Laboratory, Xianhu Hydrogen Valley, Foshan 528200, China.
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China.
Nanomaterials (Basel). 2022 Aug 3;12(15):2660. doi: 10.3390/nano12152660.
The energy crisis and environmental issues are becoming more severe due to the long-term consumption of fossil fuels. Therefore, novel energy-conversion devices with high energy density and environmental friendliness are expected to provide reliable alternatives to traditional fossil-based energy systems. However, because of the inevitable use of costly precious metals as the electrode catalysts for such devices, their popularization is seriously hindered. Transition metal nitrides (TMNs) exhibit similar surface and adsorption properties to noble metals because the atomic distance between metal atoms increases and the d-band center of metal atoms downshifts after nitrogen atoms enter the metal lattice. TMNs have become one of the best electrode materials to replace noble metal-based electrocatalysts in next-generation energy-storage and energy-conversion devices. In this review, the recent developments in the electrocatalytic application of TMNs are covered. First, we discuss the structure and activity origin of TMNs and introduce the common synthesis methods for the preparation of TMNs. Subsequently, we illustrate the applications of mono-metallic TMNs and multi-metallic TMNs in oxygen-reduction reaction, oxygen-evolution reaction, and bifunctional oxygen reduction and evolution reactions. Finally, we summarize the challenges of TMNs encountered at the present stage, and expect their future development.
由于长期使用化石燃料,能源危机和环境问题日益严峻。因此,具有高能量密度和环境友好性的新型能量转换装置有望为传统的化石能源系统提供可靠的替代方案。然而,由于此类装置不可避免地使用昂贵的贵金属作为电极催化剂,其推广受到严重阻碍。过渡金属氮化物(TMNs)表现出与贵金属相似的表面和吸附特性,因为氮原子进入金属晶格后,金属原子之间的原子间距增大,金属原子的d带中心下移。TMNs已成为下一代储能和能量转换装置中替代贵金属基电催化剂的最佳电极材料之一。在这篇综述中,涵盖了TMNs电催化应用的最新进展。首先,我们讨论了TMNs的结构和活性起源,并介绍了制备TMNs的常见合成方法。随后,我们阐述了单金属TMNs和多金属TMNs在氧还原反应、析氧反应以及双功能氧还原和析氧反应中的应用。最后,我们总结了TMNs现阶段面临的挑战,并展望了它们的未来发展。