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Stable optical trapping and sensitive characterization of nanostructures using standing-wave Raman tweezers

机译:使用驻波拉曼镊子进行稳定的光捕获和纳米结构的敏感表征

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摘要

Optical manipulation and label-free characterization of nanoscale structures open up new possibilities for assembly and control of nanodevices and biomolecules. Optical tweezers integrated with Raman spectroscopy allows analyzing a single trapped particle, but is generally less effective for individual nanoparticles. The main challenge is the weak gradient force on nanoparticles that is insufficient to overcome the destabilizing effect of scattering force and Brownian motion. Here, we present standing-wave Raman tweezers for stable trapping and sensitive characterization of single isolated nanostructures with a low laser power by combining a standing-wave optical trap with confocal Raman spectroscopy. This scheme has stronger intensity gradients and balanced scattering forces, and thus can be used to analyze many nanoparticles that cannot be measured with single-beam Raman tweezers, including individual single-walled carbon nanotubes (SWCNT), graphene flakes, biological particles, SERS-active metal nanoparticles, and high-refractive semiconductor nanoparticles. This would enable sorting and characterization of specific SWCNTs and other nanoparticles based on their increased Raman fingerprints.
机译:纳米结构的光学操作和无标记表征为组装和控制纳米器件和生物分子开辟了新的可能性。与拉曼光谱仪集成的光镊允许分析单个捕获的粒子,但通常对单个纳米粒子的效率较低。主要挑战是对纳米颗粒的弱梯度力,不足以克服散射力和布朗运动的不稳定作用。在这里,我们介绍了驻波拉曼镊子,通过结合驻波光阱和共焦拉曼光谱技术,以较低的激光功率稳定地捕获和分离了单个纳米结构。该方案具有更强的强度梯度和平衡的散射力,因此可用于分析许多用单束拉曼镊子无法测量的纳米颗粒,包括单个的单壁碳纳米管(SWCNT),石墨烯薄片,生物颗粒,SERS-活性金属纳米粒子和高折射半导体纳米粒子。这将能够基于特定的SWCNT和其他纳米粒子增加的拉曼指纹进行分类和表征。

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