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Droplet Pattern Formation and Translation in New Microfluidic Flow- Focusing Devices
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作者 徐华国 梁好均 《Chinese Journal of Chemical Physics》 SCIE CAS CSCD 2014年第6期679-684,I0003,I0004,共8页
We conducted experiments on specially designed microfluidic chips that generate droplets through a microfluidic ow-focusing approach. The fluid flow in the microfluidic channel produced a shear flow field at low Reyno... We conducted experiments on specially designed microfluidic chips that generate droplets through a microfluidic ow-focusing approach. The fluid flow in the microfluidic channel produced a shear flow field at low Reynolds numbers. The droplets in the microfluidic system exhibited special droplet pattern formations similar to periodic crystal-like lattices because of the competition between shear forces and surface tension. By adjusting the flow rate ratio of the water (droplet phase) to oil (continuous phase) phases and changing the outlet channel widths, the droplets formed monolayer dispersion to double-layer formation to monolayer squeezing when the outlet channel widths were 250 or 300 μm. We also obtained droplets with monolayer dispersion, three-layer arrangements, double-layer squeezing, and monolayer squeezing when the outlet channel width was 350 μm. The outlet channel width was increased to 400 μm, and four-layer arrangements were observed. We also studied the translation of droplet formation, which resulted in a detailed strategy to control drop size and droplet pattern formation for emulsi cation in microfluidic devices. We expect that our strategy can provide theoretical guidance to synthesize dispersion or polydisperse colloid particles. 展开更多
关键词 Microfluidic flow-focusing device Droplet pattern formation TRANSITION
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微生物微纳米生物制造的前沿与展望 被引量:1
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作者 石志军 史续典 +1 位作者 孙臻 杨光 《生物工程学报》 CAS CSCD 北大核心 2013年第2期131-140,共10页
自然界中微生物种类极为丰富,尺寸涵盖了纳米级与微米级。微生物细胞培养成本低廉,生长繁殖迅速,具有丰富的遗传表现型,因此微生物是可用于纳米、微米以及多层次跨尺度加工的天然"基本单元"和"底盘细胞"。"基... 自然界中微生物种类极为丰富,尺寸涵盖了纳米级与微米级。微生物细胞培养成本低廉,生长繁殖迅速,具有丰富的遗传表现型,因此微生物是可用于纳米、微米以及多层次跨尺度加工的天然"基本单元"和"底盘细胞"。"基于微生物"的生物制造目的是利用微生物的特异结构和多样功能进行仿生和调控,操纵微生物进行加工组装,从而获得新材料、新器件。同时,建立深入研究微生物行为模式的新技术与新方法,为揭示传统方法所未涉及的基本科学问题提供新的平台。以下将分别从纳米和微米两个尺度以及利用微生物的结构或功能两个角度来概述基于微生物的微纳米生物制造的前沿进展。 展开更多
关键词 微生物 生物制造 微纳米 有序组装 表面修饰 图案化排列
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