Center for Nano Science and Technology@PoliMi, Istituto Italiano di Tecnologia, Via Raffaele Rubattino, 81, 20134 Milano, Italy.
Biomedical Engineering Department, Politecnico di Milano, Piazza Leonardo Da Vinci, 32, 20133 Milano, Italy.
ACS Appl Mater Interfaces. 2023 Jun 14;15(23):27750-27758. doi: 10.1021/acsami.3c05473. Epub 2023 Jun 1.
The incorporation of responsive elements into photonic crystals is an effective strategy for fabricating active optical components to be used as sensors, actuators, and modulators. In particular, the combination of simple multilayered dielectric mirrors with optically responsive plasmonic materials has proven to be successful. Recently, Tamm plasmon (TP) modes have emerged as powerful tools for these purposes. These modes arise at the interface between a distributed Bragg reflector (DBR) and a plasmonic layer and can be excited at a normal incidence angle. Although the TP field is located usually at the DBR/metal interface, recent studies have demonstrated that nanoscale corrugation of the metal layer permits access to the TP mode from outside, thus opening exciting perspectives for many real-life applications. In this study, we show that the TP resonance obtained by capping a DBR with a nanostructured layer of silver is responsive to . Our data indicate that the modification of the TP mode originates from the well-known capability of silver to interact with bacteria, within a process in which the release of Ag ions leaves an excess of negative charge in the metal lattice. Finally, we exploited this effect to devise a case study in which we optically differentiated between the presence of proliferative and nonproliferative bacteria using the TP resonance as a read-out. These findings make these devices promising all-optical probes for bacterial metabolic activity, including their response to external stressors.
将响应元件纳入光子晶体是制造用作传感器、执行器和调制器的有源光学组件的有效策略。特别是,将简单的多层介电镜与光响应等离子体材料相结合已被证明是成功的。最近,Tamm 等离子体(TP)模式已成为这些目的的强大工具。这些模式出现在分布式布拉格反射器(DBR)和等离子体层之间的界面上,可以在正常入射角下激发。尽管 TP 场通常位于 DBR/金属界面,但最近的研究表明,金属层的纳米级波纹允许从外部进入 TP 模式,从而为许多实际应用开辟了令人兴奋的前景。在这项研究中,我们表明,用银的纳米结构层覆盖 DBR 获得的 TP 共振对 。我们的数据表明,TP 模式的修饰源于众所周知的银与细菌相互作用的能力,在这个过程中,Ag 离子的释放会使金属晶格中留下多余的负电荷。最后,我们利用这种效应设计了一个案例研究,我们使用 TP 共振作为读出,在光学上区分增殖和非增殖细菌的存在。这些发现使这些设备成为用于细菌代谢活性的有前途的全光学探头,包括它们对外部应激源的反应。