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ACS Sustainable Chemistry & Engineering· 2026Q1

Molecular Polarity in Conjugated Microporous Polymers for Efficient CO2 Photoreduction

Xianqiang Gao, Kun Zhang, Lulu Cao, Yulin Liu et al.

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