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◆ Journal of hazardous materials2026-08-27

Cascade electron donation across Sn-Pt-TiO2 interfaces mobilizes lattice oxygen for low-temperature benzene combustion.

Haoran Liu, Zhiwei Huang, Mingshuo Tian, Jia Chen, Chang Sun, Xiaomin Wu, Huazhen Shen, Huawang Zhao, Bihong Lv, Guohua Jing

原始摘要(英文原文)· Original abstract
Catalytic combustion of benzene demands efficient low-temperature oxygen activation, yet mechanistic principles at bimetallic interfaces remain unclear. Existing Sn-Pt-TiO2 studies focused on CO oxidation, leaving multi-electron aromatic mineralization unaddressed. Here, we design Pt-SnOx/TiO2 catalysts to demonstrate a cascade interfacial electron-transfer: SnOx donates electrons to Pt, which subsequently mobilizes TiO2 lattice oxygen (O*). Comprehensive characterization reveals this two-step relay raises the metallic Pt⁰ fraction from 62.1% to 70.5%, generates unique surface peroxide/superoxide species, and delivers ∼198% more low-temperature reducible oxygen. Kinetic analyses confirm the electron-enriched Pt-SnOx interface achieves surface O* saturation at a lower O2 partial pressure than Pt/TiO2, providing direct kinetic evidence for augmented intrinsic O2 activation. Consequently, T90 decreases from 228 to 188 °C and the apparent activation energy drops from 128.3 to 99.6 kJ·mol-1, with accelerated phenolate formation and suppressed oxalate accumulation confirmed by in situ DRIFTS. Crucially, the negligible activity of Pt/SnO2 under identical conditions rules out SnOx as the primary oxygen source, confirming that the promoter functions predominantly as an electronic relay that mobilizes support lattice oxygen. This work establishes a transferable cascade design principle for engineering noble-metal/oxide interfaces in deep aromatic VOC oxidation.
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Cascade electron donation across Sn-Pt-TiO2 interfaces mobilizes lattice oxygen for low-temperature benzene combustion. — 科研速览 Science Skim