Yin Yin, Pang Jinbo, Wang Jiawei, Lu Xueyi, Hao Qi, Saei Ghareh Naz Ehsan, Zhou Xinxing, Ma Libo, Schmidt Oliver G
School of Materials Science and Engineering , Jiangsu University , 212013 Zhenjiang , China.
Material Systems for Nanoelectronics , Technische Universität Chemnitz , 09107 Chemnitz , Germany.
ACS Appl Mater Interfaces. 2019 May 1;11(17):15891-15897. doi: 10.1021/acsami.9b00733. Epub 2019 Apr 19.
Graphene, with its excellent chemical stability, biocompatibility, and capability of electric field enhancement, has a great potential in optical and optoelectronic applications with superior performances by integrating with conventional optical and plasmonic devices. Here, we design and demonstrate graphene-activated optoplasmonic cavities based on rolled-up nanomembranes, which are employed for in situ monitoring the photodegradation dynamics of organic dye molecules on the molecular level in real time. The presence of the graphene layer significantly enhances the electric field of hybrid optoplasmonic modes at the cavity surface, enabling a highly sensitive surface detection. The degradation of rhodamine 6G molecules on the graphene-activated sensor surface is triggered by localized laser irradiation and monitored by measuring the optical resonance shift. Our demonstration paves the way for real-time, high-precision analysis of photodegradation by resonance-based optical sensors, which promises the comprehensive understanding of degradation mechanism and exploration of effective photocatalysts.
石墨烯具有出色的化学稳定性、生物相容性以及电场增强能力,通过与传统光学和等离子体器件集成,在光学和光电子应用中具有巨大潜力,能展现出卓越性能。在此,我们设计并展示了基于卷绕纳米膜的石墨烯激活光等离子体腔,用于在分子水平实时原位监测有机染料分子的光降解动力学。石墨烯层的存在显著增强了腔表面混合光等离子体模式的电场,实现了高灵敏度的表面检测。罗丹明6G分子在石墨烯激活的传感器表面的降解由局部激光照射触发,并通过测量光学共振位移进行监测。我们的演示为基于共振的光学传感器对光降解进行实时、高精度分析铺平了道路,有望全面理解降解机制并探索有效的光催化剂。