Construction of manganese ferrite/zinc ferrite anchored graphene-based hierarchical aerogel photocatalysts following Z-scheme electron transfer for visible-light-driven carbon dioxide reduction

Shuntian Huang, Meng Hu, Linheng He, Sijia Ren, Xiaodong Wu, Sheng Cui

Research output: Contribution to journalArticlepeer-review

Abstract

Herein, atomic-level interfacial coupling between spinel-type MnFe2O4 (MFA) and ZnFe2O4 (ZFA) was achieved via a sol–gel method combined with phase separation. These composites were then anchored onto a three-dimensional graphene aerogel (GA) through ethylenediamine-assisted hydrothermal self-assembly, forming a hierarchically porous MFA/ZFA@GA with a high surface area (191.06 m2/g). The optimized MFA/ZFA@GA exhibited a CO production rate of 21.14 μmol·g−1·h−1 (96 % selectivity, 94 % stability) under visible light, a 3.87-fold enhancement over single-component systems. The in-situ MFA/ZFA heterojunction and graphene-enhanced electron transfer synergistically prolonged photogenerated electron lifetime by 10 times. The hierarchical pores also boosted CO2 adsorption (7.66 wt%), the appreciable saturation magnetization intensity (37.49 emu/g) enabled magnetic separation recovery, and *COOH monitoring confirmed rapid desorption kinetics for high CO selectivity. Experiments combined with theoretical calculations revealed a Z-scheme mechanism: MnFe2O4’s reductive electrons (−0.79 V vs. NHE) drove CO2 reduction, while ZnFe2O4’s oxidative holes (1.50 V vs. NHE) facilitated H2O oxidation. Strategic integration of heterostructures, carbon hybridization, and aerogel architectures offered an efficient pathway for monolithic photocatalyst design.

Original languageEnglish
Article number137678
JournalJournal of Colloid and Interface Science
Volume694
DOIs
StatePublished - 15 Sep 2025

Keywords

  • Graphene
  • Hierarchical aerogel
  • Photocatalytic CO reduction
  • Spinel ferrites
  • Z-scheme

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