Ti Chaoyang, Ho-Thanh Minh-Tri, Wen Qi, Liu Yuxiang
Department of Mechanical Engineering, Worcester Polytechnic Institute, Worcester, MA, 01609, USA.
Department of Physics, Worcester Polytechnic Institute, Worcester, MA, 01609, USA.
Sci Rep. 2017 Oct 13;7(1):13168. doi: 10.1038/s41598-017-13205-6.
Position detection with high accuracy is crucial for force calibration of optical trapping systems. Most existing position detection methods require high-numerical-aperture objective lenses, which are bulky, expensive, and difficult to miniaturize. Here, we report an affordable objective-lens-free, fiber-based position detection scheme with 2 nm spatial resolution and 150 MHz bandwidth. This fiber based detection mechanism enables simultaneous trapping and force measurements in a compact fiber optical tweezers system. In addition, we achieved more reliable signal acquisition with less distortion compared with objective based position detection methods, thanks to the light guiding in optical fibers and small distance between the fiber tips and trapped particle. As a demonstration of the fiber based detection, we used the fiber optical tweezers to apply a force on a cell membrane and simultaneously measure the cellular response.
高精度的位置检测对于光镊系统的力校准至关重要。大多数现有的位置检测方法需要高数值孔径的物镜,这些物镜体积庞大、价格昂贵且难以小型化。在此,我们报告了一种经济实惠的无物镜、基于光纤的位置检测方案,其空间分辨率为2纳米,带宽为150兆赫兹。这种基于光纤的检测机制能够在紧凑的光纤光镊系统中同时进行捕获和力测量。此外,由于光纤中的光导以及光纤尖端与被捕获粒子之间的距离较小,与基于物镜的位置检测方法相比,我们实现了更可靠的信号采集,且失真更小。作为基于光纤检测的一个演示,我们使用光纤光镊对细胞膜施加力,并同时测量细胞反应。