Efficient Atomically Dispersed Co/N‐C Catalysts for Formic Acid Dehydrogenation and Transfer Hydrodeoxygenation of Vanillin

Author:

Li Xiaoyu1,Lu Guilong1,Wang Tianyu2,Yang Jia‐Yue2,Herrendorf Tim3,Schwiderowski Philipp1,Schulwitz Jonas1,Chen Peirong4,Kleist Wolfgang3,Zhao Guixia5,Muhler Martin16,Peng Baoxiang16ORCID

Affiliation:

1. Laboratory of Industrial Chemistry Ruhr University Bochum 44780 Bochum Germany

2. Optics & Thermal Radiation Research Center Institute of Frontier and Interdisciplinary Science Shandong University 266237 Qingdao China

3. Department of Chemistry RPTU Kaiserslautern-Landau 67663 Kaiserslautern Germany

4. Guangdong Provincial Key Laboratory of Atmospheric Environment and Pollution Control School of Environment and Energy South China University of Technology 510006 Guangzhou China

5. College of Environmental Science and Engineering North China Electric Power University 102206 Beijing P. R. China

6. Max Planck Institute for Chemical Energy Conversion 45470 Mülheim a. d. Ruhr Germany

Abstract

AbstractAtomically dispersed catalysts have gained considerable attention due to their unique properties and high efficiency in various catalytic reactions. Herein, a series of Co/N‐doped carbon (N‐C) catalysts was prepared using a metal‐lignin coordination strategy and employed in formic acid dehydrogenation (FAD) and hydrodeoxygenation (HDO) of vanillin. The atomically dispersed Co/N‐C catalysts showed outstanding activity, acid resistance, and long‐term stability in FAD. The improved activity and stability may be attributed to the high dispersion of Co species, increased surface area, and strong Co−N interactions. XPS and XAS characterization revealed the formation of Co‐N3 centers, which are assumed to be the active sites. In addition, DFT calculations demonstrated that the adsorption of formic acid on single‐atom Co was stronger than that on Co13 clusters, which may explain the high catalytic activity. The Co/N‐C catalyst also showed promising performance in the transfer HDO of vanillin with formic acid, without any external additional molecular H2.

Publisher

Wiley

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