4.6 Article

Batch Fabrication of Ultrasensitive Carbon Nanotube Hydrogen Sensors with Sub-ppm Detection Limit

Journal

ACS SENSORS
Volume 3, Issue 4, Pages 749-756

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.8b00006

Keywords

carbon nanotube; hydrogen sensor; network film; high sensitivity; detection limit

Funding

  1. National Key Research & Development Program [2016YFA0201901, 2016YFA0201902]
  2. National Science Foundation of China [61621061, 61390504, 61427901]

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Carbon nanotube (CNT) has been considered as an ideal channel material for building highly sensitive gas sensors. However, the reported H-2 sensors based on CNT always suffered from the low sensitivity or low production. We developed the technology to massively fabricate ultra-highly sensitive H-2 sensors based on solution derived CNT network through comprehensive optimization of the CNT material, device structure, and fabrication process. In the H-2 sensors, high semiconducting purity solution-derived CNT film sorted by poly[9-(1-octylonoyl)-9H-carbazole-2,7-diyl](PCz) is used as the main channel, which is decorated with Pd nanoparticles as functionalization for capturing H-2. Meanwhile, Ti contacts are used to form a Schottky barrier for enhancing transferred charge-induced resistance change, and then a response of resistance change by 3 orders of magnitude is achieved at room temperature under the concentration of similar to 311 ppm with a very fast response time of approximately 7 s and a detection limit of 890 ppb, which is the highest response to date for CNT H-2 sensors and the very first time to show the sub-ppm detection for H-2 at room temperature. Furthermore, the detection limit concentration can be improved to 89 ppb at 100 degrees C. The batch fabrication of CNT film H-2 sensors with ultra-high sensitivity and high uniformity is ready to promote CNT devices to application for the first time in some specialized field.

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