Photonics Research Center, College of Science, Harbin Engineering University, Harbin, China.
Opt Lett. 2013 Jul 15;38(14):2617-20. doi: 10.1364/OL.38.002617.
We demonstrate trapped yeast cell axial-position adjustment without moving the optical fiber in a single-fiber optical trapping system. The dynamic axial-position adjustment is realized by controlling the power ratio of the fundamental mode beam (LP01) and the low-order mode beam (LP11) generated in a normal single-core fiber. In order to separate the trapping positions produced by the two mode beams, we fabricate a special fiber tapered tip with a selective two-step method. A yeast cell of 6 μm diameter is moved along the optical axis direction for a distance of ~3 μm. To the best of our knowledge, this is the first demonstration of the trapping position adjustment without moving the fiber for single-fiber optical tweezers. The excitation and utilization of multimode beams in a single fiber constitutes a new development for single-fiber optical trapping and makes possible more practical applications in biomedical research fields.
我们展示了在单光纤光学捕获系统中无需移动光纤即可调整被捕获酵母细胞的轴向位置。通过控制在普通单芯光纤中产生的基模光束(LP01)和低阶模光束(LP11)的功率比,实现了动态轴向位置调整。为了分离由这两束光产生的捕获位置,我们采用选择性两步法制作了特殊的光纤锥形尖端。直径为 6μm 的酵母细胞沿光轴方向移动了约 3μm。据我们所知,这是首次在不移动光纤的情况下对单光纤光镊的捕获位置进行调整的演示。在单光纤中激励和利用多模光束为单光纤光学捕获开辟了新的发展方向,使其在生物医学研究领域有了更多实际应用的可能。