...
首页> 外文期刊>Lab on a chip >Bubbles no more: in-plane trapping and removal of bubbles in microfluidic devices
【24h】

Bubbles no more: in-plane trapping and removal of bubbles in microfluidic devices

机译:不再有气泡:微流控设备中的平面捕集和去除气泡

获取原文
获取原文并翻译 | 示例
           

摘要

Gas bubbles present a frequent challenge to the on-chip investigation and culture of biological cells and small organs. The presence of a single bubble can adversely impair biological function and often viability as it increases the wall shear stress in a liquid-perfused microchannel by at least one order of magnitude. We present a microfluidic strategy for in-plane trapping and removal of gas bubbles with volumes of 0.1-500 nL. The presented bubble trap is compatible with single-layer soft lithography and requires a footprint of less than ten square millimetres. Nitrogen bubbles were consistently removed at a rate of 0.14 μL min~(-1). Experiments were complemented with analytical and numerical models to comprehensively characterize bubble removal for liquids with different wetting behaviour. Consistent long-term operation of the bubble trap was demonstrated by removing approximately 4000 bubbles during one day. In a case study, we successfully applied the bubble trap to the on-chip investigation of intact small blood vessels. Scalability of the design was demonstrated by realizing eight parallel traps at a total removal rate of 0.9 μL min~(-1) (measured for nitrogen).
机译:气泡对生物细胞和小器官的芯片研究和培养提出了频繁的挑战。单个气泡的存在会不利地损害生物学功能,并经常损害其生存能力,因为它会使液体灌注的微通道中的壁切应力增加至少一个数量级。我们提出了一种微流控策略,用于在平面内捕获和去除体积为0.1-500 nL的气泡。所提出的气泡阱与单层软光刻兼容,并且所需的占地面积小于10平方毫米。持续以0.14μLmin〜(-1)的速率去除氮气气泡。实验辅以分析和数值模型,以全面表征具有不同润湿特性的液体的气泡去除特性。通过在一天中去除约4000个气泡,证明了气泡收集器的长期稳定运行。在一个案例研究中,我们成功地将气泡捕获器应用于完整小血管的芯片研究。通过以0.9μLmin〜(-1)的总去除率(测量氮)实现八个平行阱,证明了设计的可扩展性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号