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April 1, 2026ACS Catalysis8 citations

Polyoxometalate-Mediated Spatially Compartmentalized S-scheme Heterojunction Coupled with Molecular Junction for Overall CO 2 Photoreduction

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BLBonan LiMCMengxue ChenWSWeize Sun

Key Points

  • This research aims to develop a new photocatalytic system that efficiently reduces CO2 while promoting water oxidation.
  • Design of a polyoxometalate (POM)-mediated heterojunction within a metal-organic framework (MOF).
  • Integration of S-scheme heterojunction and molecular junction in TiO2@Ni4PCN-222.
  • Use of in situ DRIFTS, illuminated KPFM, and QIS-XPS for mechanistic confirmation.
  • Achieved a CO evolution rate of 32.4 μmol g–1 h–1.
  • Demonstrated a selectivity of 98.0% for CO production.
  • Notable enhancement in bulk charge separation due to the dual mechanism of the system.

Abstract

Rational design of photocatalytic systems coupling the reduction of CO2 with water oxidation is vital for carbon-neutral technologies. Herein, we propose a strategy based on the synergistic assembly of polyoxometalates (POMs) within and on a porphyrinic metal–organic framework (MOF, PCN-222). Cross-scale integration of an S-scheme heterojunction and a molecular junction within a single POM@MOF-POM-TiO2 (TiO2@Ni4PCN-222) system is demonstrated. In this spatially compartmentalized platform, Ni4(H2O)2(PW9O34)210– (Ni4POM) confined in the MOF pores modulates the band structure and enhances the built-in electric field of the S-scheme heterojunction, promoting efficient bulk charge separation. Meanwhile, surface-exposed Ni4POM enables uniform TiO2 deposition, forming molecular-level W–O–Ti coordination contacts that act as electron-transport bridges. Benefiting from this dual mechanism, TiO2@Ni4PCN-222 achieves a CO evolution rate of 32.4 μmol g–1 h–1 with 98.0% selectivity in a gas–solid CO2 photoreduction system. In situ DRIFTS, illuminated KPFM, and QIS-XPS confirm the proposed mechanism.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69ccb75916edfba7beb8948bhttps://doi.org/10.1021/acscatal.5c09326
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