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Dynamic in-situ sensing of fluid-dispersed 2D materials integrated on microfluidic Si chip

机译:微流体SI芯片上集成的流体分散的2D材料的动态原位检测

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摘要

In this work, we propose a novel approach for wafer-scale integration of 2D materials on CMOS photonic chip utilising methods of synthetic chemistry and microfluidics technology. We have successfully demonstrated that this approach can be used for integration of any fluid-dispersed 2D nano-objects on silicon-on-insulator photonics platform. We demonstrate for the first time that the design of an optofluidic waveguide system can be optimised to enable simultaneous in-situ Raman spectroscopy monitoring of 2D dispersed flakes during the device operation. Moreover, for the first time, we have successfully demonstrated the possibility of label-free 2D flake detection via selective enhancement of the Stokes Raman signal at specific wavelengths. We discovered an ultra-high signal sensitivity to the xyz alignment of 2D flakes within the optofluidic waveguide. This in turn enables precise in-situ alignment detection, for the first practicable realisation of 3D photonic microstructure shaping based on 2D-fluid composites and CMOS photonics platform, while also representing a useful technological tool for the control of liquid phase deposition of 2D materials.
机译:在这项工作中,我们提出了一种新的晶圆级集成在CMOS光子芯片利用合成化学和微流体技术方法中的一种新方法。我们已成功证明这种方法可用于在绝缘体上的任何流体分散的2D纳米物体上集成在绝缘体上的任何流体分散的2D纳米物体。我们首次证明了优化替代波导系统的设计,以便在装置操作期间能够在设备操作期间同时出于原位拉曼光谱监测2D分散的薄片。此外,我们首次成功地证明了通过在特定波长下选择性提升Stokes拉曼信号的选择性增强的无标签的2D片薄片检测的可能性。我们发现了对替代波导内的2D薄片的XYZ对准的超高信号敏感性。这又能够精确地原位对准检测,用于基于2D流体复合材料和CMOS光子凝固平台的3D光子微观结构成形的第一次切实可行实现,同时还代表了用于控制2D材料的液相沉积的有用技术工具。

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