Department of Physics, University of Southern California, Los Angeles, CA 90089, USA.
Nanotechnology. 2010 Mar 12;21(10):105304. doi: 10.1088/0957-4484/21/10/105304. Epub 2010 Feb 16.
We present an optical method for patterning SERS (surface-enhanced Raman spectroscopy)--enhancing aggregates of gold nanoparticles, using a focused laser beam to optically trap the nanoparticles in suspension. At high laser powers, heat generated from the plasmonic excitation causes boiling of the aqueous suspension and the formation of gaseous bubbles of water vapor. By measuring the Raman peak of the hydroxyl bond of water, the temperature in the laser spot during the aggregation can be determined in situ. The hydrophilic nanoparticles are found to aggregate at the liquid-vapor interface. By allowing the suspension to dry, a ring of gold nanoparticles is deposited on the substrate, producing a highly SERS-active region. These aggregates are studied using optical microscopy, scanning electron microscopy and micro-Raman spectroscopy.
我们提出了一种光学方法来对金纳米颗粒的 SERS(表面增强拉曼光谱)增强聚集体进行图案化,使用聚焦激光束将悬浮中的纳米颗粒光阱。在高激光功率下,等离子体激发产生的热量会导致水悬浮液沸腾并形成水蒸气的气泡。通过测量水的羟基键的拉曼峰,可以原位确定聚合过程中激光点的温度。亲水纳米颗粒被发现聚集在液-气界面处。通过使悬浮液干燥,可以在基底上沉积一层金纳米颗粒,从而产生高度 SERS 活性区域。使用光学显微镜、扫描电子显微镜和微拉曼光谱对这些聚集体进行了研究。