Biomass-derived N-doped porous carbon: an efficient metal-free catalyst for methylation of amines with CO 2
Developing green, efficient, and low-cost catalysts for methylation of N–H by using CO 2 as the C1 resource is highly desired yet remains a significant challenge. Herein, N-doped porous carbons (NPCs) were designed, synthesized, and proved to be an excellent metal-free catalyst for CO 2 -participate...
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Veröffentlicht in: | Green chemistry : an international journal and green chemistry resource : GC 2019-11, Vol.21 (23), p.6252-6257 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | Developing green, efficient, and low-cost catalysts for methylation of N–H by using CO
2
as the C1 resource is highly desired yet remains a significant challenge. Herein, N-doped porous carbons (NPCs) were designed, synthesized, and proved to be an excellent metal-free catalyst for CO
2
-participated methylation conversion. NPCs were prepared
via
the pyrolysis of a mixture of tannic acid and urea. Both theoretical calculation and experiment demonstrate that the N species especially pyridinic N and pyrrolic N within NPCs can work as Lewis basic sites for attacking CO
2
to weaken the CO bonds and lower the molecule conversion barrier, facilitating the subsequent methylation of N–H to produce, for example,
N
,
N
-dimethylaniline. Besides, the unique porous structure can enrich CO
2
and accelerate mass transfer, synergistically promoting the conversion of CO
2
. The optimized NPC
(1/5)
catalyst, integrating the porous structure and strong Lewis basicity, exhibits excellent catalytic activity for CO
2
-based methylation reaction under mild conditions (1 bar CO
2
, 75 °C). Our work, for the first time, demonstrates the feasibility of using NPCs to catalyze the methylation of amino compounds to produce
N
,
N
-dimethylamine by exploiting CO
2
as the C1 resource. |
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ISSN: | 1463-9262 1463-9270 |
DOI: | 10.1039/C9GC03277K |