Galilean School of Higher Education, University of Padova, 35122 Padova, Italy.
EMAT-University of Antwerp, Groenenborgerlaan 171, B-2020 Antwerp, Belgium.
J Phys Chem Lett. 2022 Mar 17;13(10):2264-2272. doi: 10.1021/acs.jpclett.1c04242. Epub 2022 Mar 3.
Plasmonic catalysis in the colloidal phase requires robust surface ligands that prevent particles from aggregation in adverse chemical environments and allow carrier flow from reagents to nanoparticles. This work describes the use of a water-soluble conjugated polymer comprising a thiophene moiety as a surface ligand for gold nanoparticles to create a hybrid system that, under the action of visible light, drives the conversion of the biorelevant NAD to its highly energetic reduced form NADH. A combination of advanced microscopy techniques and numerical simulations revealed that the robust metal-polymer heterojunction, rich in sulfonate functional groups, directs the interaction of electron-donor molecules with the plasmonic photocatalyst. The tight binding of polymer to the gold surface precludes the need for conventional transition-metal surface cocatalysts, which were previously shown to be essential for photocatalytic NAD reduction but are known to hinder the optical properties of plasmonic nanocrystals. Moreover, computational studies indicated that the coating polymer fosters a closer interaction between the sacrificial electron-donor triethanolamine and the nanoparticles, thus enhancing the reactivity.
胶态中的等离子体催化需要稳定的表面配体,以防止颗粒在不利的化学环境中聚集,并允许载体从试剂流到纳米颗粒。本工作描述了使用一种包含噻吩部分的水溶性共轭聚合物作为金纳米颗粒的表面配体,以创建一种杂化系统,在可见光的作用下,驱动生物相关的 NAD 向其高能量还原形式 NADH 的转化。先进的显微镜技术和数值模拟的结合表明,富含磺酸基官能团的坚固的金属-聚合物异质结,指导电子供体分子与等离子体光催化剂的相互作用。聚合物与金表面的紧密结合排除了对传统过渡金属表面共催化剂的需求,尽管先前的研究表明共催化剂对光催化 NAD 还原至关重要,但已知会阻碍等离子体纳米晶体的光学性质。此外,计算研究表明,涂层聚合物促进了牺牲电子供体三乙醇胺与纳米颗粒之间更紧密的相互作用,从而提高了反应性。