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Ultrasensitive Plasmon-Free Surface-Enhanced Raman Spectroscopy with Femtomolar Detection Limit from 2D van der Waals Heterostructure

机译:无敏感的等离子体表面增强拉曼光谱与2D Van der Waals异质结构的毫微微摩尔检测极限

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Two-dimensional (2D) materials have been promoted as an ideal platform for surface-enhanced Raman spectroscopy (SERS), as they mitigate the drawbacks of noble metal-based SERS substrates. However, the inferior limit of detection has limited the practical applicability of 2D material-based SERS substrates. Here, we synthesize uniform large-area ReOxSy thin films via solution-phase deposition without post-treatments and demonstrate a graphene/ReOxSy vertical heterostructure as an ultrasensitive SERS platform. The electronic structure of ReOxSy can be modulated by changing the oxygen concentration in the lattice structure, obtaining efficient complementary resonance effects between ReOxSy and the probe molecule. In addition, the oxygen atoms in the ReOxSy lattice generate a dipole moment on the thin- film surface, which increases the electron transition probability. These synergistic effects outstandingly enhance the Raman effect in the ReOxSy thin film. When ReOxSy forms a vertical heterostructure on a graphene as the SERS substrate, the enhanced charge-transfer and exciton resonances improve the limit of detection to the femtomolar level, while achieving remarkable flexibility, reproducibility, and operational stability. Our results provide important insights into 2D material-based ultrasensitive SERS based on chemical mechanisms.
机译:二维(2D)材料被促进为表面增强拉曼光谱(SERS)的理想平台,因为它们减轻了基于贵金属的SERS基材的缺点。然而,检测的劣势限制了2D基于材料的SERS基材的实际适用性。在这里,我们通过溶液相沉积合成均匀的大面积雷诺薄膜,而不会治疗,并证明石墨烯/ Reoxsy垂直异质结构作为超敏感的SERS平台。可以通过改变晶格结构中的氧浓度来调节Reoxsy的电子结构,从而在Reoxsy和探针分子之间获得有效的互补共振效应。另外,雷诺利晶格中的氧原子在薄膜表面上产生偶极力矩,这增加了电子转变概率。这些协同效应突出地增强了雷西薄膜中的拉曼效应。当Reoxsy在石墨烯上形成垂直异质结构时,增强的电荷 - 转移和激子共振可提高对Femtomolar水平的检测极限,同时实现了显着的灵活性,再现性和操作稳定性。我们的结果基于化学机制为基于2D材料的超敏感SER提供了重要的见解。

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