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Synergistic NaCl-modulated refinement and in-situ SnO2 embedding for ultrasensitive isobutanol sensing in SnO2-Fe2O3 heterojunctions

  • Kaiwei Wang
  • , Jianing Qian
  • , Chi Ma
  • , Lei An
  • , Yingzhu Li
  • , Likun Pan*
  • , Tianjun Ni*
  • , Dong Liu
  • *Corresponding author for this work
  • Zhengzhou University

Research output: Contribution to journalArticlepeer-review

Abstract

The development of gas sensors for trace isobutanol detection remains challenging due to the trade-offs among sensitivity, selectivity, and stability. Herein, we propose a synergistic multi-scale engineering strategy, integrating NaCl-assisted structural refinement with in-situ SnO2 embedding, to construct hierarchical SnO2-Fe2O3 heterojunctions. The NaCl modulator not only confines particle growth and creates interconnected mesopores, but also promotes the formation of oxygen defects during calcination. Concurrently, the in-situ generated SnO2 nanocrystals establish intimate electronic coupling with the Fe2O3 matrix, inducing interfacial band bending and a built-in electric field. The resulting heterostructure possesses a high specific surface area (55.04 ± 7.78 m2g−1), abundant oxygen defects, and well-defined heterointerfaces. When deployed for isobutanol sensing, the optimized sensor exhibits exceptional performance: a high response of 113 (20 ppm, 200 °C), an ultralow detection limit of 0.05 ppm, rapid response/recovery kinetics (4 s/5 s), excellent selectivity over common interferences, and remarkable long-term stability. Mechanism studies reveal that the hierarchical porosity facilitates efficient gas diffusion, the heterojunction amplifies resistance modulation through enhanced charge separation, and the oxygen defects lower the activation barrier for surface oxidation reactions. This work demonstrates a rational material design paradigm that synergistically coordinates structural, interfacial, and defect engineering, offering a generalizable route to advanced metal-oxide sensors for practical volatile organic compound monitoring.

Original languageEnglish
Article number176599
JournalChemical Engineering Journal
Volume537
DOIs
StatePublished - 1 Jun 2026

Keywords

  • Gas sensors
  • Hierarchical porosity
  • Isobutanol detection
  • Oxygen defects
  • SnO-FeO heterojunction

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