首页> 外文会议>International Conference on UK-China Emerging Technologies >Foldable, Eco-Friendly and Low-Cost Microfluidic Paper-Based Capacitive Droplet Sensor
【24h】

Foldable, Eco-Friendly and Low-Cost Microfluidic Paper-Based Capacitive Droplet Sensor

机译:可折叠,环保且低成本的微流体纸基电容式液滴传感器

获取原文

摘要

Conventional electronic components are non-foldable and non-flexible with complex and expensive fabrication processes. Considering the recent interest in foldable electronics, we report a foldable, eco-friendly, low-cost, highly sensitive, and stable microfluidic paper-based capacitive droplet $(mu$ PCD) sensor. The sensor is fabricated using readily available materials (filter paper and copper tape) through a simplistic, easy-go- designed, and low-cost bench-top fabrication process. The design of the capacitive sensor is based on a parallel plate capacitor attained by direct deposition of copper tape on filter paper. The filter paper serves as a dielectric. Very small quantities $(mu$ Ls) of liquid can easily flow through filter paper due to micro-pores in it. The $10 imes 10$ mm sensor can detect water droplets as small as $10 mu mathrm{L}$ with sensitivity $3 pm 0.5$ pF$/ 1 mu mathrm{L}$. The sensor response is insensitive to bending as tested by measuring the capacitance response at different bending radius from 0 to 7mm. The sensor responds accurately and repeatedly for different volumes of water droplets at different bending radius. Foldability of the sensor makes it suitable for the environment with different geometries, shapes, and dimensions like industry, body parts, and objects for liquid detection.
机译:常规的电子部件是不可折叠的且非柔性的,具有复杂且昂贵的制造过程。考虑到最近对可折叠电子产品的兴趣,我们报告了一种可折叠,环保,低成本,高度灵敏且稳定的基于微流体纸的电容式微滴$(μPCD)传感器。该传感器是使用易于获得的材料(滤纸和铜带)通过一种简单,易于设计且低成本的台式制造工艺来制造的。电容传感器的设计基于平行板电容器,该电容器是通过将铜带直接沉积在滤纸上而获得的。滤纸用作电介质。由于其中的微孔,很少量的液体很容易流过滤纸。 $ 10 x 10毫米传感器可检测小至$ 10 \ mu \ mathrm {L} $的水滴,灵敏度为$ 3 \ pm 0.5 $ pF $ / 1 \ mu \ mathrm {L} $。通过在0到7mm的不同弯曲半径下测量电容响应来测试,传感器的响应对弯曲不敏感。传感器针对不同弯曲半径下的不同体积的水滴准确且重复地响应。传感器的可折叠性使其适用于具有不同几何形状,形状和尺寸的环境,例如工业,身体部位和液体检测对象。

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