Brooks James L, Warkentin Christopher L, Chulhai Dhabih V, Goodpaster Jason D, Frontiera Renee R
Department of Chemistry, University of Minnesota, Minneapolis, Minnesota 55455, United States.
ACS Nano. 2020 Dec 22;14(12):17194-17202. doi: 10.1021/acsnano.0c07123. Epub 2020 Dec 9.
Plasmonic materials interact strongly with light to focus and enhance electromagnetic radiation down to nanoscale volumes. Due to this localized confinement, materials that support localized surface plasmon resonances are capable of driving energetically unfavorable chemical reactions. In certain cases, the plasmonic nanostructures are able to preferentially catalyze the formation of specific photoproducts, which offers an opportunity for the development of solar-driven chemical synthesis. Here, using plasmonic environments, we report inducing an intramolecular methyl migration reaction, forming 4-methylpyridine from -methylpyridinium. Using both experimental and computational methods, we were able to confirm the identity of the -methylpyridinium by making spectral comparisons against possible photoproducts. This reaction involves breaking a C-N bond and forming a new C-C bond, highlighting the ability of plasmonic materials to drive complex and selective reactions. Additionally, we observe that the product yield depends strongly on optical illumination conditions. This is likely due to steric hindrance in specific regions on the nanostructured plasmonic substrate, providing an optical handle for driving plasmonic catalysis with spatial specificity. This work adds yet another class of reactions accessible by surface plasmon excitation to the ever-growing library of plasmon-mediated chemical reactions.
等离子体材料与光强烈相互作用,将电磁辐射聚焦并增强至纳米级体积。由于这种局域限制,支持局域表面等离子体共振的材料能够驱动能量上不利的化学反应。在某些情况下,等离子体纳米结构能够优先催化特定光产物的形成,这为太阳能驱动的化学合成发展提供了机会。在此,利用等离子体环境,我们报道了诱导分子内甲基迁移反应,由β-甲基吡啶鎓形成4-甲基吡啶。通过实验和计算方法,我们通过与可能的光产物进行光谱比较,确认了β-甲基吡啶鎓的身份。该反应涉及断裂C-N键并形成新的C-C键,突出了等离子体材料驱动复杂和选择性反应的能力。此外,我们观察到产物产率强烈依赖于光照条件。这可能是由于纳米结构化等离子体基底特定区域的空间位阻,为以空间特异性驱动等离子体催化提供了一种光学手段。这项工作为不断增长的等离子体介导化学反应库增添了另一类可通过表面等离子体激发实现的反应。