A new approach for an ultra-thin piezoresistive sensor based on solidified carbon ink film

被引:0
作者
Ying Yi
Ayman Samara
Bo Wang
机构
[1] Hamad Bin Khalifa University,Division of Information and Computing Technology, College of Science and Engineering
[2] Hamad Bin Khalifa University,Qatar Environment and Energy Research Institute
来源
Journal of Materials Science | 2021年 / 56卷
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摘要
Conventional flexible piezoresistive strain sensors that use conductive particles polymer composites exhibit thick structures with a low sensitivity to external tension. This paper presents a cost-effective method to fabricate ultra-thin and highly sensitive piezoresistive strain sensors. In our fabrication steps, carbon ink that is mainly composed of carbon black particles is solidified with a drying process to form a “paperlike,” flexible conductive film. Without any surface modification techniques, the carbon ink film is directly placed onto liquid-state PDMS and then bonded after the drying process. Following the rapid prototyping, different performance metrics of the fabricated sensors, including piezoresistivity, gauge factor, temperature dependency, elastic modulus, and repeatability are measured. Specifically, sensors fabricated with this method show a significantly improved gauge factor (~26) compared to similar flexible sensors fabricated by more complicated micro-fabrication methods. The proposed method of fabrication and the corresponding ultra-thin (~45 μm) sensor prototype may benefit the design and mass production of future wearable biomedical and healthcare sensors.
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页码:607 / 614
页数:7
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  • [1] Muth JT(2014)Embedded 3D printing of strain sensors within highly stretchable elastomers Adv Mater 26 6307-6312
  • [2] Vogt DM(2014)A wearable and highly sensitive pressure sensor with ultrathin gold nanowires Nat Commun 5 2-7
  • [3] Truby RL(2011)Capacitive tactile sensor array for touch screen application Sens Actuators A 165 3109-3114
  • [4] Mengüç Y(2012)Transparent triboelectric nanogenerators and self-powered pressure sensors based on micropatterned plastic films Nano Lett 12 788-792
  • [5] Kolesky DB(2009)A flexible capacitive tactile sensing array with floating electrodes J Micromech Microeng 19 4338-4372
  • [6] Wood RJ(2015)Flexible, stretchable and wearable multifunctional sensor array as artificial electronic skin for static and dynamic strain mapping Adv Electron Mater 1 1336-1342
  • [7] Lewis JA(2011)Skin-like pressure and strain sensors based on transparent elastic films of carbon nanotubes Nat Nanotechnol 6 11806-11814
  • [8] Gong S(2016)Flexible and stretchable physical sensor integrated platforms for wearable human-activity monitoring and personal healthcare Adv Mater 28 2926-2932
  • [9] Schwalb W(2016)Printed multifunctional flexible device with an integrated motion sensor for health care monitoring Sci Adv 2 3555-3564
  • [10] Wang Y(2013)Silk-molded flexible, ultrasensitive, and highly stable electronic skin for monitoring human physiological signals Adv Mater 26 3827-3836