论文标题

van der waals异质结构中非辐射能量转移的频谱可调大拉曼增强

Spectrally tunable, large Raman enhancement from nonradiative energy transfer in van der Waals heterostructure

论文作者

Dandu, Medha, Watanabe, Kenji, Taniguchi, Takashi, Sood, Ajay K., Majumdar, Kausik

论文摘要

拉曼增强技术对于在光结合相互作用中的基本研究至关重要,并在微电子学,生物化学传感和临床诊断中发现广泛应用。二维(2D)材料及其范德华异质结构(VDWH)迅速成为拉曼增强的潜在平台。在这里,我们在实验上展示了一种新技术,该技术是由非放射性能量转移(NRET)驱动的,该技术在垂直VDWH中获得了$ 10 $折的拉曼强度,该技术由单层过渡金属二甲基元素(1L-TMD)组成的垂直VDWH,放置在多层snse snse \ tsub2上。因此,几个薄弱的拉曼峰变得可见,否则这些峰是无法察觉的。我们还通过调整通过温度变化来调整1L-TMD和SNSE \ TSUB2之间的光谱重叠来显示增强因子的强烈调制,结果与捕获NRET效果的拉曼极化模型非常吻合。观察到的NRET驱动的拉曼增强功能是一种新型机制,到目前为止尚未实验证明,与常规表面(SERS),尖端(TER)或干扰增强的Raman散射(IERS)机制不同,这些机制仅通过电荷转移或电场增强而驱动。该机制也可以与等离激元纳米结构的协同作用,以实现除热点工程外的额外选择性和灵敏度,以用于使用2D/分子杂交的分子检测等应用。我们的结果为工程拉曼增强技术开辟了新的途径,结合了垂直VDWH的宽连接区域可访问的均匀增强功能的优势。

Raman enhancement techniques are essential for fundamental studies in light-matter interactions and find widespread application in microelectronics, bio-chemical sensing, and clinical diagnosis. Two-dimensional (2D) materials and their van der Waals heterostructures (vdWHs) are emerging rapidly as potential platforms for Raman enhancement. Here, we experimentally demonstrate a new technique of Raman enhancement driven by nonradiative energy transfer (NRET) achieving a $10$-fold enhancement in the Raman intensity in a vertical vdWH comprising of a monolayer transition metal dichalcogenide (1L-TMD) placed on a multilayer SnSe\tsub2. Consequently, several weak Raman peaks become visible which are otherwise imperceptible. We also show a strong modulation of the enhancement factor by tuning the spectral overlap between the 1L-TMD and SnSe\tsub2 through temperature variation and the results are in remarkable agreement with a Raman polarizability model capturing the effect of NRET. The observed NRET driven Raman enhancement is a novel mechanism which has not been experimentally demonstrated thus far and is distinct from conventional surface (SERS), tip (TERS) or Interference enhanced Raman scattering (IERS) mechanisms that are driven solely by charge transfer or electric field enhancement. The mechanism can also be used in synergy with plasmonic nanostructures to achieve additional selectivity and sensitivity beyond hot spot engineering for applications like molecular detection using 2D/molecular hybrids. Our results open new avenues for engineering Raman enhancement techniques coupling the advantages of uniform enhancement accessible across a wide junction area in vertical vdWHs.

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