Selectivity control in Pt-catalyzed cinnamaldehyde hydrogenation
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Durndell, Lee J.
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Aston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, EnglandAston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
Durndell, Lee J.
[1
]
Parlett, Christopher M. A.
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Aston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, EnglandAston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
Parlett, Christopher M. A.
[1
]
Hondow, Nicole S.
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Univ Leeds, Inst Mat Res, Leeds LS2 9JT, W Yorkshire, EnglandAston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
Hondow, Nicole S.
[2
]
Isaacs, Mark A.
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Aston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, EnglandAston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
Isaacs, Mark A.
[1
]
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Wilson, Karen
[1
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Lee, Adam F.
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Aston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, EnglandAston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
Lee, Adam F.
[1
]
机构:
[1] Aston Univ, European Bioenergy Res Inst, Birmingham B4 7ET, W Midlands, England
[2] Univ Leeds, Inst Mat Res, Leeds LS2 9JT, W Yorkshire, England
Chemoselectivity is a cornerstone of catalysis, permitting the targeted modification of specific functional groups within complex starting materials. Here we elucidate key structural and electronic factors controlling the liquid phase hydrogenation of cinnamaldehyde and related benzylic aldehydes over Pt nanoparticles. Mechanistic insight from kinetic mapping reveals cinnamaldehyde hydrogenation is structure-insensitive over metallic platinum, proceeding with a common Turnover Frequency independent of precursor, particle size or support architecture. In contrast, selectivity to the desired cinnamyl alcohol product is highly structure sensitive, with large nanoparticles and high hydrogen pressures favoring C=O over C=C hydrogenation, attributed to molecular surface crowding and suppression of sterically-demanding adsorption modes. In situ vibrational spectroscopies highlight the role of support polarity in enhancing C=O hydrogenation (through cinnamaldehyde reorientation), a general phenomenon extending to alkyl-substituted benzaldehydes. Tuning nanoparticle size and support polarity affords a flexible means to control the chemoselective hydrogenation of aromatic aldehydes.