Engineering Molecular Heterojunctions in 2D MOFs for Efficient Charge Separation and CO 2 Photoreduction

Abstract

selectivity, thereby enabA molecular-level heterojunction is achieved by coordinating zinc porphyrin (Zn-TIPP) units onto the surface of a two-dimensional metal–organic framework nanosheet (Cu-HHTP), resulting in a metal-porphyrin-modified 2D MOF heterostructure (Zn-TIPP/Cu-HHTP). Under visible light irradiation, the CO2 is photocatalytic convert to formic acid, with a production rate of 1.08 mmol g-1 h-1 and a selectivity of 94%. This catalytic activity represents an eightfold enhancement compared to that of pristine Cu-HHTP and surpasses most reported MOF-based photocatalysts. The substantial enhancement in catalytic performance can be attributed to the synergistic effects derived from molecular-level integration, which enables accurate interfacial charge regulation, promoting charge separation and substantially decrease the energy barrier of the rate-determining step (*OCHO → *HCOOH). This study establishes a design strategy for molecular heterojunctions in advanced metal-organic framework photocatalysts. It demonstrates that molecular-level precise molecular-level modification and functional unit integration can concurrently optimize interfacial charge kinetics, enhance catalytic activity, and regulate product selectivity, thereby facilitating efficient solar-driven CO2 conversion.ling solar-driven carbon dioxide conversion.

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Article information

Article type
Paper
Submitted
29 Jan 2026
Accepted
17 Mar 2026
First published
18 Mar 2026

Nanoscale, 2026, Accepted Manuscript

Engineering Molecular Heterojunctions in 2D MOFs for Efficient Charge Separation and CO 2 Photoreduction

Y. Rong, Z. Xin, X. Pan, X. Wang, S. Zheng, S. Wang and Z. Wang, Nanoscale, 2026, Accepted Manuscript , DOI: 10.1039/D6NR00401F

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