| Literature DB >> 31191892 |
Yue Wu1, Zheng Chen1, Weng-Chon Cheong1, Chao Zhang1, Lirong Zheng2, Wensheng Yan3, Rong Yu4, Chen Chen1, Yadong Li1.
Abstract
To endow non-noble metals with the high catalytic activity that is typically exhibited by nobleEntities:
Year: 2019 PMID: 31191892 PMCID: PMC6540879 DOI: 10.1039/c9sc00475k
Source DB: PubMed Journal: Chem Sci ISSN: 2041-6520 Impact factor: 9.825
Fig. 2TEM image of ZIF-67 (a) and Co NCs/N-C (b); (c) HAADF-STEM image and corresponding element maps showing the distribution of C (red), N (yellow) and Co (green); (d–f) TEM image and the magnified images of Co NCs/N-C after acid treatment; (g) magnified HAADF-STEM image of the Co NCs/N-C. (h) Atomic resolution STEM image of the Co NCs encapsulated in nitrogen-doped carbon; (i) magnified HAADF-STEM image of the nitrogen-doped graphitized carbon substrate.
Fig. 3(a) NEXAFS spectra of Co NCs/N-C, (b) XANES spectra (the blue area highlights the near-edge absorption energy) and (c) Fourier transform (FT) spectra of ZIF-67, Co NCs/N-C, catalysts treated in 500 °C H2 and 300 °C air, and Co–BTC; (d) the N K-edge and (e) C K-edge of Co NCs/N-C; (f) the diagram of Co NCs encapsulated in N-doped carbon.
Fig. 4(a) Reaction for oxidative dehydrogenation of 1,2,3,4-tetrahydroquinoline; (b) comparison of conversion and selectivity for different catalysts towards oxidative dehydrogenation; (c) recycling test of the Co NC/N-C catalyst; (d) the DMPO spin-trapping ESR spectra for ˙O2– in this catalytic system.
Oxidative dehydrogenation of N-heterocyclic compounds with Co NCs/N-C as the catalyst
| Substrate | Product | Yield | |
| 1 |
|
| 99.9 |
| 2 |
|
| 99.3 |
| 3 |
|
| 100.0 |
| 4 |
|
| 97.8 |
| 5 |
|
| 97.5 |
| 6 |
|
| 74.3 (93.8) |
| 7 |
|
| 99.9 |
| 8 |
|
| 96.8 |
| 9 |
|
| 17.8 |
| 10 |
|
| 58.3 |
| 11 |
|
| 65.1 |
| 12 |
|
| 28.1 |
Reaction conditions: 0.5 mmol substrate, 50 mg catalyst (the molar ratio of Co : substrate in this work is 7.6%), 3 mL MeOH, air, 50 °C, 12 h.
The yields are determined by GC-MS and GC analysis.
Reaction conditions: 0.5 mmol substrate, 50 mg catalyst, 3 mL MeOH, air, 50 °C, 24 h.
Fig. 5The mechanism of oxidative dehydrogenation and hydrogenation on three types of Co NCs: Co NCs exposed on the nitrogen-doped carbon substrate (left), Co NCs encapsulated within nitrogen-doped carbon (middle), and Co NCs encapsulated within carbon (right).
Fig. 6(a) Reaction for hydrogenation of quinoline; and the conversion rate vs. temperature (b), time (c), and pressure of H2 (d) for hydrogenation.