4.8 Article

Selective Hydrogenation of Furfural over the Co-Based Catalyst: A Subtle Synergy with Ni and Zn Dopants

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 7, Pages 8507-8517

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c01436

Keywords

multimetallic catalyst; synergy; furfural; hydrogenation; furfuryl alcohol

Funding

  1. National Natural Science Foundation of China [31760190, 31960296]
  2. Special Project of Agricultural Basic Research in Yunnan [2017FG001026, 2017FG001055, 2018FG001058]
  3. Preresearch Projects in the Equipment Field [61400040404]
  4. Key Laboratory of State Forestry Administration for Highly-Efficient Utilization of Forestry Biomass Resources in Southwest China [2019-KF06]

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A multimetallic catalyst (NiCoZn@CN) with excellent catalytic performance for hydrogenation of furfural to furfuryl alcohol was prepared through a facile pyrolysis method. The synergy between Co and Ni, Zn dopants greatly promoted the performance of the catalyst. The NiCoZn@CN-600 catalyst showed high selectivity and conversion rates, making it a promising candidate for challenging reactions in the biomass conversion.
A multimetal doping strategy has aroused extensive attention in promoting a non-noble catalyst for selective hydrogenation reaction. Herein, a multimetallic catalyst (NiCoZn@CN) with excellent catalytic performance for hydrogenation of furfural (FAL) to furfuryl alcohol (FOL) is prepared through a facile, inexpensive, and efficient pyrolysis method. Using H-2 as a H donor, extremely high selectivity (>99%) with 100% conversion is attained over the optimal NiCoZn@CN-600 catalyst. The subtle synergy between Co and Ni, Zn dopants, which remarkably promotes the performance of the Co-based catalyst, is revealed. In the NiCoZn@CN system, Co-0 is proven to be the main active site, whose content is greatly improved by Ni and Co dopants. Additionally, the Ni dopant could also benefit activation of H-2 and the Zn dopant could enhance metal nanoparticle dispersion and the porous structure of the catalyst. In situ FTIR indicates that the vertical adsorption mode of FAL with the O-aldehyde terminal on NiCoZn@CN-600 ensures a selective hydrogenation process. With a N-doped carbon matrix, NiCoZn@CN-600 shows good cycling stability in five times run. NiCoZn@CN-600 is also competent in the catalytic transfer hydrogenation (CTH) of FOL, affording >99% yield with 2-propanol as a H donor. This study opens an avenue toward rational design of multimetallic doping catalysts with high selectivity for challenging reactions in the conversion of biomass-derived compounds.

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