Flynn Richard A, Shao Bing, Chachisvilis Mirianas, Ozkan Mihrimah, Esener Sadik C
Department of Electrical and Computer Engineering, University of California, San Diego, La Jolla, CA 92093, USA.
Biomed Microdevices. 2005 Jun;7(2):93-7. doi: 10.1007/s10544-005-1586-z.
A counter-propagating optical trap measurement (COTM) system is proposed and analyzed based on the ray-optics model. In this system, refractive index and size of trapped objects can be estimated by using forward scattered light from the two-beam laser trap with resolution Delta n = 0.013 for the refractive index measurements and 3.3% for the size measurements, which is comparable with current bulk techniques, such as refractometry, and flow cytometry. The unique advantage of the COTM system over conventional approaches lies in its capability of marker-free single-particle characterization in whatever transparent buffer required by living cell, eliminating the necessity of changing the fluid composition of the sample in refractometry, and of tagging target with toxic fluorescence dyes in flow cytometry. Noise analysis predicts a potential improvement in the system resolution by more than two orders of magnitude. This non-invasive and sterile tool complements lab-on-a-chips with single cell manipulation and analysis in living friendly ambient.
基于光线光学模型,提出并分析了一种反向传播光阱测量(COTM)系统。在该系统中,通过两束激光阱的前向散射光可以估计被捕获物体的折射率和尺寸,折射率测量的分辨率为Δn = 0.013,尺寸测量的分辨率为3.3%,这与当前的批量技术(如折射测量法和流式细胞术)相当。COTM系统相对于传统方法的独特优势在于,它能够在活细胞所需的任何透明缓冲液中对无标记单颗粒进行表征,消除了折射测量法中改变样品流体成分的必要性,以及流式细胞术中用有毒荧光染料标记靶标的必要性。噪声分析预测该系统分辨率可能提高两个以上数量级。这种非侵入性和无菌的工具在友好的活体环境中通过单细胞操作和分析对芯片实验室起到补充作用。