Atomic-Level Asymmetric Tuning of the Co 1 -N 3 P 1 Catalyst for Highly Efficient N -Alkylation of Amines with Alcohols

Despite the extensive development of non-noble metals for the -alkylation of amines with alcohols, the exploitation of catalysts with high selectivity, activity, and stability still faces challenges. The controllable modification of single-atom sites through asymmetric coordination with a second het...

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Veröffentlicht in:Journal of the American Chemical Society 2024-07, Vol.146 (29), p.20518-20529
Hauptverfasser: Liu, Huan, Tian, Luyao, Zhang, Zhentao, Wang, Ligang, Li, Jialu, Liang, Xiao, Zhuang, Jiahao, Yin, Hang, Yang, Da, Zhao, Guofeng, Su, Fabing, Wang, Dingsheng, Li, Yadong
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Sprache:eng
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Zusammenfassung:Despite the extensive development of non-noble metals for the -alkylation of amines with alcohols, the exploitation of catalysts with high selectivity, activity, and stability still faces challenges. The controllable modification of single-atom sites through asymmetric coordination with a second heteroatom offers new opportunities for enhancing the intrinsic activity of transition metal single-atom catalysts. Here, we prepared the asymmetric N/P hybrid coordination of single-atom Co -N P by absorbing the Co-P complex on ZIF-8 using a concise impregnation-pyrolysis process. The catalyst exhibits ultrahigh activity and selectivity in the -alkylation of aniline and benzyl alcohol, achieving a turnover number (TON) value of 3480 and a turnover frequency (TOF) value of 174 . The TON value is 1 order of magnitude higher than the reported catalysts and even 37-fold higher than that of the homogeneous catalyst CoCl (PPh ) . Furthermore, the catalyst maintains its high activity and selectivity even after 6 cycles of usage. Controlling experiments and isotope labeling experiments confirm that in the asymmetric Co -N P system, the -alkylation of aniline with benzyl alcohol proceeds via a transfer hydrogenation mechanism involving the monohydride route. Theoretical calculations prove that the superior activity of asymmetric Co -N P is attributed to the higher d-band energy level of Co sites, which leads to a more stable four-membered ring transition state and a lower reaction energy barrier compared to symmetrical Co -N .
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.4c07197