论文标题
一步去角质方法,用于等离子2D晶体的等离子激活
One-step exfoliation method for plasmonic activation of large-area 2D crystals
论文作者
论文摘要
先进的去角质技术对于探索2D材料的内在特性和应用至关重要。尽管最近发现的Au增强的去角质技术为准备大规模2D晶体的准备提供了有效的策略,但金色的高成本使这种方法无法在工业应用中广泛采用。此外,直接的AU接触可能会在2D半导体中显着淬灭光致发光(PL)发射。因此,至关重要的是找到可以取代黄金以实现2D材料的有效去角质的替代金属。在这里,我们提出了一种单步辅助方法,该方法可以有效去角质剥落许多大区域2D单层,其中产量比与Au增强的去角质方法相媲美。然而,与AU膜不同的是,Sio2/Si底物上准备的AG膜的表面粗糙度要高得多,这有助于促进由粗糙Ag表面形成的纳米结构产生的表面等离子体的产生。更有趣的是,2D半导体晶体(例如MOS2,MOSE2)和AG膜之间的强耦合导致独特的PL增强,在其他机械剥落技术中尚未观察到,这主要归因于增强的光 - 型光结合,作为增强的光 - 产物,作为表面质子极化的扩展plastrasmonic polariton(sppp)的结果。我们的工作提供了一种较低成本和通用的Ag辅助去角质方法,而在同一提供的SPP-MARTETS相互作用中。
Advanced exfoliation techniques are crucial for exploring the intrinsic properties and applications of 2D materials. Though the recently discovered Au-enhanced exfoliation technique provides an effective strategy for preparation of large-scale 2D crystals, the high cost of gold hinders this method from being widely adopted in industrial applications. In addition, direct Au contact could significantly quench photoluminescence (PL) emission in 2D semiconductors. It is therefore crucial to find alternative metals that can replace gold to achieve efficient exfoliation of 2D materials. Here, we present a one-step Ag-assisted method that can efficiently exfoliate many large-area 2D monolayers, where the yield ratio is comparable to Au-enhanced exfoliation method. Differing from Au film, however, the surface roughness of as-prepared Ag films on SiO2/Si substrate is much higher, which facilitates the generation of surface plasmons resulting from the nanostructures formed on the rough Ag surface. More interestingly, the strong coupling between 2D semiconductor crystals (e.g. MoS2, MoSe2) and Ag film leads to a unique PL enhancement that has not been observed in other mechanical exfoliation techniques, which can be mainly attributed to enhanced light-matter interaction as a result of extended propagation of surface plasmonic polariton (SPP). Our work provides a lower-cost and universal Ag-assisted exfoliation method, while at the same offering enhanced SPP-matter interactions.