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March 29, 2026Science Advances0 citationsOpen Access

Light-driven toluene ammoxidation via mixture photocatalyst of halide perovskite Cs 3 Bi 2 Br 9 and TiO 2

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TXTian XiaQWQi WangKLK. M. Liew

Key Points

  • The research aims to develop a photocatalytic method for producing benzonitrile from toluene under mild conditions.
  • Utilized a mixture photocatalyst of Cs3Bi2Br9 and TiO2 for toluene ammoxidation.
  • Conducted experiments under blue light irradiation at temperatures of 100° to 120°C.
  • Produced benzonitrile (1.751 grams) using ammonia, dioxygen, and toluene as precursors.
  • Assessed the photocatalyst's selectivity and quantum efficiency over a 30-hour test period.
  • Achieved an impressive selectivity of 85 to 90% for benzonitrile production.
  • Obtained a linear yield rate of 600 μmol hour −1.
  • Demonstrated quantum efficiencies of up to 40% with the photocatalyst.
  • Maintained stability over the entire 30-hour test period.

Abstract

Benzonitrile is vital for the production of rubbers, pharmaceuticals, and dyes. Traditional benzonitrile synthesis via toluene ammoxidation requires high temperatures (≥350°C), leading to high energy consumption. Here, we demonstrate a photocatalytic route for benzonitrile synthesis under milder conditions (100° to 120°C, 1 to 4 bar, blue light irradiation). Using ammonia, dioxygen, and toluene as precursors, gram-scale benzonitrile (1.751 grams) was produced over a mixture photocatalyst lead-free halide perovskite cesium bismuth bromide (Cs 3 Bi 2 Br 9 ) + titanium dioxide, demonstrating satisfactory selectivity (85 to 90%) and a linear yield rate of 600 μmol hour −1 . The photocatalyst exhibited excellent quantum efficiencies (up to 40%) and maintained stability over a 30-hour test period. Mechanism studies revealed that, in the presence of an interfacial effect, the perovskite phase primarily activated benzyl carbon (sp 3 )–hydrogen bonds, while titanium dioxide facilitated the oxidation of alcohol intermediate to aldehydes. These benzaldehydes were subsequently converted to benzonitriles via ammoxidation, predominantly catalyzed by Cs 3 Bi 2 Br 9 through aldimines (RCH═NH).

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Cite This Study

Xia et al. (2026) studied this question.

synapsesocial.com/papers/69c8c34bde0f0f753b39df7dhttps://doi.org/10.1126/sciadv.aec3407
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