生物电化学系统中氧还原和析氢阴极催化剂的研究进展:钼作为下一代催化剂

P. Mishra, Putla Sudarsanam, D. Mahapatra, Ahamad Elmekawy, D. Pant, L. Singh
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引用次数: 3

摘要

氧还原反应(ORRs)一直是生物电化学系统(BESs)、低温燃料电池以及各种电化学平台中系统性能的关键因素。铂基催化剂是BESs中最好的ORR电催化剂;然而,在阴极反应动力学的电化学设置中,它受到丰度低、价格高和催化耐久性差的限制。近年来,为了满足ORR的高性能要求,人们对金属基催化剂的纳米级修饰进行了大量探索。尽管如此,通过适当选择高效、低成本的金属基ORR催化剂,仍有许多机会可以提高阴极催化剂的性能。钼(Mo)以其2D和3D层的多维形式,与其他非金属的协同组合,作为低成本的金属基ORR催化剂,在提供增强的ORR潜力方面比铂具有非凡的性能。本综述揭示了目前对更坚固的催化剂材料的需求,从而对继续探索Mo作为低成本金属基ORR催化剂的可能性进行了全面的回顾。通过文献分析,首先阐明ORR在BESs中的意义,其次阐述钼基阴极催化剂的电化学性质、作用机理以及ORR运行中性能限制因素。此外,在提高ORR电位的钼基催化配方方面的广泛和系统的敏锐,包括纳米复合钼阴极催化剂;多种构型钼催化剂的研制;carbon-supported Mo-catalyst;形态变化;表面积修改;并详细讨论了钼与其他过渡金属及其衍生物的偶联,为钼基催化剂的应用前景提供了参考。最后,讨论了钼基阴极催化剂在制备、并置和实施方面的许多未来研究机会和预测,并提出了相应的建议,作为结论性评论,提出了这一主题的最新进展。图形抽象
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Progressions in cathodic catalysts for oxygen reduction and hydrogen evolution in bioelectrochemical systems: Molybdenum as the next-generation catalyst
ABSTRACT Oxygen reduction reactions (ORRs) are unanimously a key factor of system performances in bioelectrochemical systems (BESs), low-temperature fuel cells, and generally in several electrochemical platforms. Platinum (Pt)-based catalyst is the finest electrocatalyst for ORR in BESs; however, it is constrained by its low abundance, high price, and poor catalytic durability in an electrochemical setup for cathodic reaction kinetics. In recent years, significant efforts in trimming the metal-based catalyst up to nanoscale to cater high performance of ORR have been explored. Still, there are many opportunities to improve catalyst performance at cathode through proper selection of an efficient low-cost metal-based ORR catalyst. Molybdenum (Mo) with its multi-dimensional form as 2D and 3D layers and synergistic combination with other non-metals offers prospects of extraordinary performance as low-cost metal-based ORR catalyst over the Pt in delivering enhanced ORR potential. The present review throws light on current requirements of a sturdier catalyst material and thus provides a comprehensive review on the continuing efforts in exploring the possibility of Mo as a low-cost metal-based ORR catalyst. This literature analysis would enlighten the significance of ORR in BESs, followed by the electrochemistry of Mo-based cathodic catalyst, its underlying mechanism and performance limiting factors in the operation of ORR. Moreover, the extensive and systematic acumen in the context of Mo-based catalytic formulations for increased ORR potentials including nano-composite Mo-cathode catalyst; development of Mo-catalyst with varied configurations; carbon-supported Mo-catalyst; morphological changes; surface area modifications; and Mo-coupling with other transition metal and its derivatives were discussed in great detail to provide prospective application of Mo-based catalyst. Lastly, numerous opportunities and projections for future research in fabrication, juxtaposition, and implementation of Mo-based cathodic catalysts and consequent recommendations were discussed as conclusive remarks for bringing out the state-of-the-art review on this subject. Graphical abstract
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