Robust ring-opening reaction via asymmetrically coordinated Fe single atoms scaffolded by spoke-like mesoporous carbon nanospheres

Author:

Li Zhimin1ORCID,Yan Yan23,Liu Minjie3,Qu Zehua4,Yue Yongcheng1,Mao Tong1,Zhao Shuang3,Liu Mingkai23,Lin Zhiqun5ORCID

Affiliation:

1. Anyang Key Laboratory of New Functional Complex Materials, College of Chemistry and Chemical Engineering, Anyang Normal University, Anyang, Henan 455000, China

2. School of Chemistry & Chemical Engineering, Anhui University of Technology, Ma’anshan, Anhui 243002, China

3. School of Chemistry and Materials Science, Jiangsu Key Laboratory of Green Synthetic Chemistry for Functional Materials, Jiangsu Normal University, Xuzhou 221116, China

4. Department of Macromolecular Science, State Key Laboratory of Molecular Engineering of Polymers, Fudan University, Shanghai 200433, China

5. Department of Chemical and Biomolecular Engineering, National University of Singapore, Singapore 117585, Singapore

Abstract

The ability to construct metal single-atom catalysts (SACs) asymmetrically coordinated with organic heteroatoms represents an important endeavor toward developing high-performance catalysts over symmetrically coordinated counterparts. Moreover, it is of key importance in creating supporting matrix with porous architecture for situating SACs as it greatly impacts the mass diffusion and transport of electrolyte. Herein, we report the crafting of Fe single atoms with asymmetrically coordinated nitrogen (N) and phosphorus (P) atoms scaffolded by rationally designed mesoporous carbon nanospheres (MCNs) with spoke-like nanochannels for boosting ring-opening reaction of epoxide to produce an array of pharmacologically important  β -amino alcohols. Notably, interfacial defects in MCN derived from the use of sacrificial template create abundant unpaired electrons, thereby stably anchoring N and P atoms and in turn Fe atoms on MCN. Importantly, the introduction of P atom promotes the symmetry-breaking of common four N-coordinated Fe sites, resulting in the Fe-N 3 P sites on MCN (denoted Fe-N 3 P-MCN) with an asymmetric electronic configuration and thus superior catalytic capability. As such, the Fe-N 3 P-MCN catalysts manifest a high catalytic activity for ring-opening reaction of epoxide (97% yield) over the Fe-N 3 P docked on nonporous carbon surface (91%) as well as the sole Fe-N 4  SACs grounded on the same MCN support (89%). Density functional theory calculations reveal that Fe-N 3 P SAC lowers the activation barrier for the C–O bond cleavage and the C–N bond formation, thus accelerating the ring-opening of epoxide. Our study provides fundamental and practical insights into developing advanced catalysts in a simple and controllable manner for multistep organic reactions.

Funder

National Natural Science Foundation of China

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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