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Plasmonic nanoreactors regulating selective oxidation by energetic electrons and nanoconfined thermal fields

机译:等离子体纳米反应器通过精力充电电子和纳米覆盖的热场调节选择性氧化

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Optimizing product selectivity and conversion efficiency are primary goals in catalysis. However, efficiency and selectivity are often mutually antagonistic, so that high selectivity is accompanied by low efficiency and vice versa. Also, just increasing the temperature is very unlikely to change the reaction pathway. Here, by constructing hierarchical plasmonic nanoreactors, we show that nanoconfined thermal fields and energetic electrons, a combination of attributes that coexist almost uniquely in plasmonic nanostructures, can overcome the antagonism by regulating selectivity and promoting conversion rate concurrently. For propylene partial oxidation, they drive chemical reactions by not only regulating parallel reaction pathways to selectively produce acrolein but also reducing consecutive process to inhibit the overoxidation to CO 2 , resulting in valuable products different from thermal catalysis. This suggests a strategy to rationally use plasmonic nanostructures to optimize chemical processes, thereby achieving high yield with high selectivity at lower temperature under visible light illumination.
机译:优化产品选择性和转换效率是催化中的主要目标。然而,效率和选择性通常是相互拮抗的,因此高选择性伴随着低效率,反之亦然。此外,仅增加温度不太可能改变反应途径。这里,通过构建分层等离子体纳米反应器,我们表明纳米醌热场和活性电子,几乎唯一地在等离子体纳米结构中共存的属性的组合可以通过调节选择性并同时促进转化率来克服对抗。对于丙烯部分氧化,它们不仅通过调节平行反应途径来促进化学反应,以选择性地生产丙烯醛,而且还减少连续过程以抑制对CO 2的过度氧化,导致有价值的产品不同于热催化。这表明理性使用等离子体纳米结构优化化学过程的策略,从而在可见光照射下在较低的温度下实现高屈服。

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