ACS Sustainable Chemistry & Engineering· 2026Q1
Molecular Polarity in Conjugated Microporous Polymers for Efficient CO2 Photoreduction
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Short summary
Conjugated microporous polymers (CMPs) with higher molecular polarity show superior CO2 photoreduction efficiency, achieving a CO production rate of 25.78 μmol h–1g–1 with 98.07% selectivity, outperforming a less polar counterpart.
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Key points
- Molecular polarity of donor-acceptor dyads is a more effective descriptor for CO2 photoreduction than energy-level offsets in conjugated microporous polymers (CMPs).
- TP-CMP, with higher D–A polarity, achieved a CO production rate of 25.78 μmol h–1g–1 and 98.07% selectivity.
- TN-CMP, despite a stronger electron-withdrawing acceptor, showed lower performance with a CO production rate of 12.16 μmol h–1g–1 and 97.22% selectivity.
- Higher polarity in TP-CMP correlates with improved charge separation and a lower free-energy requirement for COOH formation.
AI-generated from the title and abstract; the full text is not read.
Abstract
Abstract Donor–acceptor (D–A) conjugated microporous polymers (CMPs) are a promising class of metal-free photocatalysts for CO2 reduction. However, conventional D–A CMP design strategies that prioritize the screening of isolated D and A units based solely on energy-level offsets are often insufficient, as they overlook the substantial electronic orbital reorganization induced by D–A coupling. Herein, we demonstrate that the molecular polarity of the D–A dyad serves as a descriptor for rationalizing charge transfer behavior upon photoexcitation in the structurally related D–A CMPs. Two CMPs, denoted as TP-CMP and TN-CMP, were synthesized using the same electron donor—triptycene (TATP), but different electron acceptors, 1,4,5,8-naphthalenetetracarboxylic dianhydride (NDA), and pyromellitic dianhydride (PMDA), respectively—and evaluated for CO2 photoreduction. TP-CMP delivers a substantially higher CO production rate of 25.78 μmol h–1g–1 with 98.07% selectivity, outperforming TN-CMP (12.16 μmol h–1g–1 with 97.22%). Despite the stronger electron-withdrawing ability of NDA in TN-CMP, TP-CMP exhibits higher D–A polarity, more favorable charge separation, and a lower free-energy requirement for *COOH formation, collectively consistent with its superior CO2-to-CO activity. This work establishes molecular polarity as an effective descriptor rather than D–A energy‑gap engineering for designing high-performance CMP-based photocatalysts for selective CO2 photoreduction.
The authors' abstract, as published at the source. ACS Sustainable Chemistry & Engineering, 2026 · DOI ↗
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Field: Renewable Energy, Sustainability and the Environment
Renewable Energy, Sustainability and the EnvironmentEnergy