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Published on: August 17, 2019
Controlling Radical Pathways via Valence Engineering of Rh/TiO2 for Selective Jet Fuel Synthesis from Biomass
Zhiwei Chen1, Hongru Zhou1, Yan Liang1
1State Key Laboratory of Fine Chemicals, School of Chemistry, Dalian University of Technology, Dalian 116024, Liaoning, China.
Abstract:
Photocatalytic biomass conversion offers a sustainable route for jet fuel production under mild conditions, while controlling the selectivity of products remains a long-standing challenge because of the involvement of various radical intermediates. Herein, we report a strategy to achieve selective switching toward jet fuel (C8-C18 hydrocarbons) in the photocatalytic decarboxylation of biomass-derived fatty acids by regulating hydrogen radical transfer on TiO2 surfaces. By modulating the valence states of Rh cocatalysts, we spatially orient radical intermediates to guide their reaction pathways: oxidized Rh (Rh3+) promotes decarboxylative hydrogenation (yielding Cn-1 alkanes), while reduced Rh (Rh0) drives decarboxylative C-C coupling (forming C2n-2 alkanes). This approach enables selective conversion of a broad range of biomass-derived acids, including fatty acids, aromatic acids, branched-chain fatty acids, and naphthenic acids, into target jet fuel hydrocarbons. This work provides an effective strategy for directing reaction pathways through spatial control of radical intermediates, advancing the development of sustainable biomass upgrading technologies.
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