Yuan Lin, Zhou Jingyi, Zhang Ming, Wen Xuelan, Martirez John Mark P, Robatjazi Hossein, Zhou Linan, Carter Emily A, Nordlander Peter, Halas Naomi J
Department of Chemical and Biomolecular Engineering, University of California, Los Angeles, Los Angeles, California 90095-1405, United States.
ACS Nano. 2022 Oct 25;16(10):17365-17375. doi: 10.1021/acsnano.2c08191. Epub 2022 Oct 6.
Plasmonic antenna-reactor photocatalysts have been shown to convert light efficiently to chemical energy. Virtually all chemical reactions mediated by such complexes to date, however, have involved relatively simple reactions that require only a single type of reaction site. Here, we investigate a planar Al nanodisk antenna with two chemically distinct and spatially separated active sites in the form of Pd and Fe nanodisks, fabricated in 90° and 180° trimer configurations. The photocatalytic reactions H + D → 2HD and NH + D → NHD + HD were both investigated on these nanostructured complexes. While the H-D exchange reaction showed an additive behavior for the linear (180°) nanodisk complex, the NH + D reaction shows a clear synergistic effect of the position of the reactor nanodisks relative to the central Al nanodisk antenna. This study shows that light-driven chemical reactions can be performed with both chemical and spatial control of the specific reaction steps, demonstrating precisely designed antennas with multiple reactors for tailored control of chemical reactions of increasing complexity.
等离子体天线-反应器光催化剂已被证明能有效地将光转化为化学能。然而,迄今为止,几乎所有由这类复合物介导的化学反应都涉及相对简单的反应,只需要单一类型的反应位点。在这里,我们研究了一种平面铝纳米盘天线,它具有两个化学性质不同且空间分离的活性位点,分别为钯和铁纳米盘的形式,以90°和180°三聚体构型制备。在这些纳米结构复合物上研究了光催化反应H + D → 2HD和NH + D → NHD + HD。虽然H-D交换反应对线性(180°)纳米盘复合物表现出加成行为,但NH + D反应显示出反应器纳米盘相对于中心铝纳米盘天线位置的明显协同效应。这项研究表明,光驱动化学反应可以在特定反应步骤的化学和空间控制下进行,并展示了具有多个反应器的精确设计天线,用于对日益复杂的化学反应进行定制控制。