Wearable Computing Lab, ETH Zurich, Gloriastarsse 35, 8092 Zurich, Switzerland.
Sensors (Basel). 2012 Oct 12;12(10):13681-93. doi: 10.3390/s121013681.
The fabrication of electronic devices, such as gas sensors on flexible polymer substrates, enables the use of electronics in applications where conventional devices on stiff substrates could not be used. We demonstrate the development of a new intra-tube electronic-nose (e-nose) gas sensor device with multiple sensors fabricated and integrated on a flexible substrate. For this purpose, we developed a new method of fabricating a sensor array of four gas sensors on a flexible polymer substrate. The method allowed the use of lithography techniques to pattern different polymers with a broad range of solubility parameters. Conductive polymer composites were used as a gas sensitive layer due to the high stretchability of the material. Each of the 30 e-nose devices on one substrate was designed to fit on a polymer strip with a width of 2 mm. A single e-nose strip was successfully integrated into the inlet tube of a gas-measurement apparatus with an inner-tube diameter of 3 mm. Using the e-nose, we were able to differentiate between four different volatile solvent vapors. The tube-integrated e-nose outperformed a chamber-integrated e-nose of the same type in terms of response time and flow-rate influences. The sensor array inside the tube showed a faster response time and detected short pulses of analyte exposure compared to the same sensor array outside of the tube. We measured gas flow rates from 1,000 to 30 sccm without significant changes in sensor performance using this intra-tube e-nose prototype. The tube could be bent to radii < 15 mm with a sensor performance similar to an unbent sensor.
电子设备的制造,如柔性聚合物衬底上的气体传感器,使电子设备能够应用于传统刚性衬底上的设备无法使用的应用中。我们展示了一种新型的管内电子鼻(e-nose)气体传感器装置的开发,该装置在柔性衬底上制造和集成了多个传感器。为此,我们开发了一种在柔性聚合物衬底上制造四个气体传感器传感器阵列的新方法。该方法允许使用光刻技术对具有广泛溶解度参数的不同聚合物进行图案化。由于材料的高拉伸性,导电聚合物复合材料被用作气体敏感层。一个衬底上的 30 个 e-nose 器件中的每一个都设计成适合宽度为 2 毫米的聚合物条带。单个 e-nose 条带成功集成到内径为 3 毫米的气体测量装置的入口管中。使用 e-nose,我们能够区分四种不同的挥发性溶剂蒸气。在响应时间和流速影响方面,集成在管内的 e-nose 优于相同类型的集成在腔室内的 e-nose。与管外的相同传感器阵列相比,管内的传感器阵列具有更快的响应时间,并检测到分析物暴露的短脉冲。使用这种管内 e-nose 原型,我们在不显著改变传感器性能的情况下测量了 1,000 至 30 sccm 的气体流速。管可以弯曲到半径<15 毫米,传感器性能与未弯曲的传感器相似。