Gessner R, Winter C, Rösch P, Schmitt M, Petry R, Kiefer W, Lankers M, Popp J
Institut für Physikalische Chemie, Universität Würzburg, Am Hubland, 97074 Würzburg, Germany.
Chemphyschem. 2004 Aug 20;5(8):1159-70. doi: 10.1002/cphc.200400026.
A highly versatile setup, which introduces an optical gradient trap into a Raman spectrometer, is presented. The particular configuration, which consists of two lasers, makes trapping independent from the Raman excitation laser and allows a separate adjustment of the trapping and excitation wavelengths. Thus, the excitation wavelength can be chosen according to the needs of the application. We describe the successful application of an optical gradient trap on transparent as well as on reflective, metal-coated microparticles. Raman spectra were recorded from optically trapped polystyrene beads and from single biological cells (e.g., erythrocytes, yeast cells). Also, metal-coated microparticles were trapped and used as surface enhanced Raman spectroscopy (SERS) substrates for tests on yeast cells. Furthermore, the optical gradient trap was combined with a SERS fiber probe. Raman spectra were recorded from trapped red blood cells using the SERS fiber probe for excitation.
介绍了一种高度通用的装置,该装置将光学梯度阱引入拉曼光谱仪。这种特殊配置由两台激光器组成,使捕获与拉曼激发激光无关,并允许分别调整捕获波长和激发波长。因此,可以根据应用需求选择激发波长。我们描述了光学梯度阱在透明以及反射性金属包覆微粒上的成功应用。记录了光学捕获的聚苯乙烯珠粒和单个生物细胞(如红细胞、酵母细胞)的拉曼光谱。此外,还捕获了金属包覆微粒并将其用作表面增强拉曼光谱(SERS)底物来检测酵母细胞。此外,光学梯度阱与SERS光纤探头相结合。使用SERS光纤探头激发,记录了捕获的红细胞的拉曼光谱。