Yang Shuang, Liu Jikun, DeVoe Don L
Department of Mechanical Engineering, University of Maryland, College Park, MD, USA.
Lab Chip. 2008 Jul;8(7):1145-52. doi: 10.1039/b801978a. Epub 2008 May 9.
Multidimensional microfluidic separation systems combining a first dimension microchannel with an array of parallel second dimension microchannels can suffer from non-uniform sample transfer between the dimensions, sample leakage, and injection plug tailing within the second dimension array. These factors can significantly reduce overall two-dimensional separation performance. In this paper, numerical and analytical models reveal an optimized chip design which combines multidimensional backbiasing and an angled channel geometry to ensure leakage-free and uniform interdimensional sample transfer, while also minimizing injected sample plug lengths. The optimized design is validated experimentally using a multidimensional chip containing five second dimension channels.
将第一维微通道与平行的第二维微通道阵列相结合的多维微流体分离系统可能会出现维度间样品转移不均匀、样品泄漏以及第二维阵列内进样塞拖尾等问题。这些因素会显著降低整体二维分离性能。本文通过数值和分析模型揭示了一种优化的芯片设计,该设计结合了多维反向偏置和倾斜通道几何结构,以确保无泄漏且维度间样品转移均匀,同时还能最小化进样样品塞的长度。使用包含五个第二维通道的多维芯片对优化设计进行了实验验证。