PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
February 2, 2026Advanced Materials9 citationsOpen Access

Engineering the Local Electronic Microenvironment via Interfacial Chelation for Efficient CO 2 Photoreduction Toward CH 4

View Full Paper
WGWenke GuiHCHailong ChengHWHui Wang

Key Points

  • The research aims to improve the efficiency of CO2 reduction to CH4 using a specially designed photocatalyst.
  • Constructed a BiOCl–BiO(HCOO) heterostructure (BiOCH) with interfacial chelation.
  • Conducted mechanistic studies on electronic interactions aiding photocatalysis.
  • Measured CH4 production rates and electron selectivity under solar irradiation.
  • BiOCH achieved a CH4 production rate of 42.95 µmol·g−1·h−1.
  • Demonstrated 95.38% electron selectivity for CH4 production.
  • Mechanistic insights revealed modulation of *CHO interaction lowering Gibbs free energy barrier.

Abstract

ABSTRACT The photocatalytic conversion of CO 2 into hydrocarbons using sustainable solar energy offers a promising strategy to address the global energy crisis and achieve carbon neutrality. However, conventional p‐block photocatalysts are often limited by inefficient electron transfer, which restricts the reaction to a two‐electron reduction pathway, primarily yielding CO and impeding the formation of high‐value hydrocarbons like CH 4 . Herein, we construct a novel BiOCl–BiO(HCOO) heterostructure (denoted as BiOCH), which features interfacial chelating interactions between the Bi 2 O 2 2 + and HCOO − layers within the BiO(HCOO) component, for efficient photocatalytic CO 2 reduction to CH 4 . This unique heterostructure broadens the light absorption spectrum and facilitates the separation of photoinduced charges. More importantly, the interfacial Bi─O chelation in BiO(HCOO) modulates the local electronic microenvironment of Bi sites. Mechanistic studies reveal that this modulation enhances the coupling between the C‐2p orbital of the * CHO intermediate and the Bi‐p orbital, thereby lowering the Gibbs free energy barrier for the critical * CO‐to‐ * CHO step and promoting CH 4 generation. Consequently, the optimized BiOCH catalyst achieves a remarkable CH 4 production rate of 42.95 µmol·g − 1 ·h − 1 with a high electron selectivity of 95.38%. This work provides a novel design strategy of organic–inorganic hybrid layered structures for steering photocatalytic CO 2 reduction toward value‐added hydrocarbons.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Gui et al. (2026) studied this question.

synapsesocial.com/papers/6980fd81c1c9540dea80f327https://doi.org/10.1002/adma.202523341
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Integration of Co Single Atoms and Ni Clusters on Defect-Rich ZrO2 for Strong Photothermal Coupling Boosts Photocatalytic CO2 Reduction2024 · 119 citations
  2. 2In situ fabrication of atomically adjacent dual-vacancy sites for nearly 100% selective CH 4 production2024 · 77 citations
  3. 3Highly Selective CO 2 Conversion to CH 4 by a N-Doped HTiNbO 5 /NH 2 -UiO-66 Photocatalyst without a Sacrificial Electron Donor2024 · 80 citations
  4. 4Molecular co-catalyst accelerating hole transfer for enhanced photocatalytic H2 evolution2015 · 230 citations
  5. 5Enhance photocatalytic CO2 reduction and biomass selective oxidation via sulfur vacancy-enriched S-scheme heterojunction of MoS2@GCN2024 · 45 citations