Spatial confinement-stabilized copper single-atoms in amphiphilic zeolite for enhanced Fenton-like catalysis

Abstract

In Fenton-like reactions, simultaneously achieving both high activity and stability in single-atom catalysts remains challenging, and the limited accessibility of active sites further restricts efficiency. In this study, a Cu+ single-atom catalyst (Cu2@amZ-200) with both high activity and stability is synthesized by utilizing the spatial confinement effect of zeolites. The TOF of Cu2@amZ-200 is about 15.8 times higher than that of other similar catalysts in the degradation of methyl orange (MO) and no significant metal aggregation could be observed after at least 7 cycles. Benefiting from the amphiphilic functionalization, Cu2@amZ-200 demonstrates a remarkable surface enrichment effect under static conditions, which effectively increases the local concentration of reactants and enables a 1.76-fold improvement in TOF compared to the unmodified catalyst. Experimental results and DFT calculations demonstrate that Cu+ exhibits the highest activity, and the ˙OH and 1O2 generated through the adsorption and activation of H2O2 play a dominant role. Notably, 1O2 broadens the effective pH range (2–10) for MO degradation, and its high selectivity toward electron-rich groups further accelerates the degradation process. This work proposes a new strategy for designing highly efficient and stable Fenton-like SACs, and establishes an environmentally friendly pure aqueous-phase catalytic system.

Graphical abstract: Spatial confinement-stabilized copper single-atoms in amphiphilic zeolite for enhanced Fenton-like catalysis

Supplementary files

Article information

Article type
Paper
Submitted
24 Sep 2025
Accepted
28 Nov 2025
First published
10 Dec 2025

J. Mater. Chem. A, 2026, Advance Article

Spatial confinement-stabilized copper single-atoms in amphiphilic zeolite for enhanced Fenton-like catalysis

H. Li, A. Yang, B. Liu, P. Guo, R. Wang, S. Qiu and Z. Zhang, J. Mater. Chem. A, 2026, Advance Article , DOI: 10.1039/D5TA07808C

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