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Updated: Sep 17, 2025

Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
An Atomically Precise Copper Cluster Nanoreactor for Efficient Catalysis in Chemical Fixation of Low-Concentration
Wan-Zhen Qiao1, Bing-Jie Xue1, Rui Wang1
1Henan Key Laboratory of Crystalline Molecular Functional Materials, College of Chemistry, Zhengzhou University, Zhengzhou, 450001, China.
Abstract:
Chemical fixation of CO2 with propargylic amines/alcohols into high value-added fine chemicals represents promising and practical routes for CO2 resource utilization, but it remains a great challenge to achieve low-concentration CO2 conversion in both reactions through one single catalytic system. Herein, a robust copper cluster [(C6H15NH)(Cu8L8I)] (I@Cu8) with nanosized cavities has been constructed. Importantly, the I@Cu8 cluster as a nanoreactor can efficiently catalyze the chemical conversion of both propargylic amines and propargylic alcohols with CO2 at simulated flue gas concentrations, due to the unique substrate enrichment effect of its well-defined nanocavities. Catalytic mechanism investigation and DFT calculations illustrate that the excellent catalytic performance originates from the simultaneous activation of alkynyl (─C≡CH) bonds and amino/hydroxyl (─NHR/─OH) groups in the I@Cu8 catalytic system, in which the I@Cu8-substrate intermediates have been confirmed through ESI-MS analysis. Impressively, this is the first example of a cluster-based nanoreactor catalyst for low-concentration CO2 cyclization reactions with both propargylic amines and propargylic alcohols. This work provides a foundation for the construction of metal cluster-based catalysts for CO2 conversion into valuable chemicals.

