Fano Resonance and Incoherent Interlayer Excitons in Molecular van der Waals Heterostructures.
Carlos R Lien-MedranoFranco P BonaféChi-Yung YamCarlos-Andres PalmaCristián Gabriel SánchezThomas FrauenheimPublished in: Nano letters (2022)
Complex van der Waals heterostructures from layered molecular stacks are promising optoelectronic materials offering the means to efficient, modular charge separation and collection layers. The effect of stacking in the electrodynamics of such hybrid organic-inorganic two-dimensional materials remains largely unexplored, whereby molecular scale engineering could lead to advanced optical phenomena. For instance, tunable Fano engineering could make possible on-demand transparent conducting layers or photoactive elements, and passive cooling. We employ an adapted Gersten-Nitzan model and real time time-dependent density functional tight-binding to study the optoelectronics of self-assembled monolayers on graphene nanoribbons. We find Fano resonances that cause electromagnetic induced opacity and transparency and reveal an additional incoherent process leading to interlayer exciton formation with a characteristic charge transfer rate. These results showcase hybrid van der Waals heterostructures as paradigmatic 2D optoelectronic stacks, featuring tunable Fano optics and unconventional charge transfer channels.
Keyphrases
- solar cells
- room temperature
- energy transfer
- diffusion weighted imaging
- diffusion weighted
- single molecule
- blood brain barrier
- high resolution
- contrast enhanced
- genome wide
- high glucose
- magnetic resonance imaging
- computed tomography
- high frequency
- oxidative stress
- gene expression
- drug induced
- diabetic rats
- endothelial cells
- liquid chromatography
- single cell
- mass spectrometry
- gold nanoparticles