论文标题
使用单光束热光镊对单细胞和颗粒进行俯仰旋转操纵
Pitch-rotational manipulation of single cells and particles using single-beam thermo-optical tweezers
论文作者
论文摘要
微粒和细胞的3D音高旋转在生物学,物理,化学和医学中的各种应用中都具有重要的作用。细胞成像和注射等应用受益于螺距旋转操作。由于垂直于传播方向产生足够高的椭圆形,因此在单光束光学镊子中产生这种运动一直难以捉摸。此外,将扩展对象捕获在两个位置只能通过将焦点之一移动到轴向方向来产生部分螺距运动。在这里,我们使用六角形的向上转换颗粒和被困在样品室中金色涂层玻璃盖子的单个细胞,即使使用单个光学镊子束,也会产生完整的360度和连续的螺距运动。穿过金表面的镊子束被部分吸收,并产生一个热点以在附近产生旋转物体的循环流动流。旋转速率可以通过激光的强度和金层的厚度来控制。因此,这种简单的配置可以在音高意义上转动粒子。该技术中的循环流的直径约为5 $ $ m,该直径比使用声音富富技术报道的直径小。
3D pitch rotation of microparticles and cells assumes importance in a wide variety of applications in biology, physics, chemistry and medicine. Applications such as cell imaging and injection benefit from pitch-rotational manipulation. Generation of such motion in single beam optical tweezers has remained elusive due to complicacies of generating high enough ellipticity perpendicular to the direction of propagation. Further, trapping an extended object at two locations can only generate partial pitch motion by moving one of the foci in the axial direction. Here, we use hexagonal-shaped upconverting particles and single cells trapped close to a gold-coated glass cover slip in a sample chamber to generate complete 360 degree and continuous pitch motion even with a single optical tweezers beam. The tweezers beam passing through the gold surface is partially absorbed and generates a hot-spot to produce circulatory convective flows in the vicinity which rotates the objects. The rotation rate can be controlled by the intensity of the laser light and the thickness of the gold layer. Thus such a simple configuration can turn the particle in the pitch sense. The circulatory flows in this technique have a diameter of about 5 $μ$m which is smaller than those reported using acousto-fluidic techniques.