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Single atom catalysts by atomic diffusion strategy 被引量:6

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摘要 The depletion of energy and increasing environmental pressure have become one of the main challenges in the world today.Synthetic high-efficiency catalysts bring hope for efficient conversion of energy and effective treatment of pollutants,especially,single-atom catalysts(SACs)are promising candidates.Herein,we comprehensively summarizes the atomic diffusion strategy,which is considered as an effective method to prepare a series of SACs.According to the different diffusion forms of the precursors,we review the synthesis pathways of SACs from three aspects:gas diffusion,solid diffusion and liquid diffusion.The gaseous diffusion method mainly discusses atomic layer deposition(ALD)and chemical vapor deposition(CVD),both of which carry out gas phase mass transfer at high temperatures.The solid-state diffusion method can be divided into nanoparticle transformation into single atoms and solid atom migration.Liquid diffusion mainly describes the electrochemical method and the molten salt method.We hope this review can trigger the rational design of SACs.
出处 《Nano Research》 SCIE EI CSCD 2021年第12期4398-4416,共19页 纳米研究(英文版)
基金 This work was supported by the National Natural Science Foundation of China(No.21801015) Beijing Institute of Technology Research Fund Program for Young Scholars.
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  • 1Bell, A. T. The impact of nanoscience on heterogeneous catalysis. Science 2003, 299, 1688-1691.
  • 2Chen, M. S.; Goodman, D. W. The structure of catalytically active gold on titania. Science 2004, 306, 252-255.
  • 3Judai, K.; Abbet, S.; Worz, A. S.; Heiz, U.; Henry, C. R. Low-temperature cluster catalysis. J. Am. Chem. Soc. 2004, 126, 2732-2737.
  • 4Herzing, A. A.; Kiely, C. J.; Carley, A. F.; Landon, P.; Hutchings, G. J. Identification of active gold nanoclusters on iron oxide supports for CO oxidation. Science 2008, 321, 1331-1335.
  • 5Turner, M.; Golovko, V. B.; Vaughan, O. P. H.; Abdulkin, P.; Berenguer-Murcia, A.; Tikhov, M. S.; Johnson, B. F. G.; Lambert, R. M. Selective oxidation with dioxygen by gold nanoparticle catalysts derived from 55-atom clusters. Nature 2008, 454, 981-983.
  • 6Vajda, S.; Pellin, M. J.; Greeley, J. P.; Marshall, C. L.; Curtiss, L. A.; Ballentine, G. A.; Elam, J. W.; Catillon-Mucherie, S.; Redfern, P. C.; Mehmood, F. et al. Subnanometre platinum clusters as highly active and selective catalysts for the oxidative dehydrogenation of propane. Nat. Mater. 2009, 8, 213-216.
  • 7Haruta, M. When gold is not noble: Catalysis by nanoparticles. Chem. Rec. 2003, 3, 75-87.
  • 8Remediakis, I. N.; Lopez, N.; Norskov, J. K. CO oxidation on rutile-supported Au nanoparticles. Angew. Chem., Int. Ed. 2005, 44, 1824-1826.
  • 9Yang, X.-F.; Wang, A. Q.; Qiao, B. T.; Li, J.; Liu, J. Y.; Zhang, T. Single-atom catalysts: A new frontier in hetero- geneous catalysis. Acc. Chem. Res. 2013, 46, 1740-1748.
  • 10Ouyang, R. H.; Liu, J.-X.; Li, W.-X. Atomistic theory of Ostwald ripening and disintegration of supported metal particles under reaction conditions. J. Am. Chem. Soc. 2012, 135, 1760-1771.

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