• DocumentCode
    1782615
  • Title

    Fully-organic flexible tactile sensor for advanced robotic applications

  • Author

    Rapisarda, Matteo ; Maiolo, Luca ; Maita, Francesco ; Calvi, Sabrina ; Ferrone, A. ; Minotti, Antonio ; Pecora, Alessandro ; Mariucci, Luigi ; Fortunato, Guglielmo

  • Author_Institution
    IMM, Rome, Italy
  • fYear
    2014
  • fDate
    12-15 Oct. 2014
  • Firstpage
    45
  • Lastpage
    48
  • Abstract
    In this work we investigate the electromechanical behavior of a flexible piezoelectric sensor, based on Polyvinylidene-fluoride-trifluoroethylene (PVDF-TrFE) capacitor fabricated on ultra-thin polyimide film (5 μm thick). The piezocapacitor has been integrated with a high mobility p-channel organic thin film transistor, made on polyethylene naphthalate (PEN, 125 μm thick), by adopting a multi-foil approach. An extensive study of the effects of the electrical and mechanical stress on the device components has been reported in order to evaluate the sensor´s reliability in a real environment. Then the sensor was tested, at different working frequencies and applied forces with the intent of mimicking the human sense of touch. We believe that this device can represent a key element for a high performing electronic skin system to be deployed on humanoid robot.
  • Keywords
    capacitors; electromechanical effects; humanoid robots; piezoelectric transducers; polymer films; reliability; skin; tactile sensors; thin film sensors; touch (physiological); PEN; PVDF-TrFE capacitor; advanced robotic application; electrical stress; electromechanical behavior; electronic skin system; flexible piezoelectric sensor; fully-organic flexible tactile sensor; high mobility p-channel organic thin film transistor; human touch sensor; humanoid robot; mechanical stress; multifoil approach; piezocapacitor; polyethylene naphthalate; polyvinylidene-fluoride-trifluoroethylene capacitor; reliability; size 125 mum; size 5 mum; ultrathin polyimide film; Organic thin film transistors; Polyethylene; Resonant frequency; Skin; PVDF-TrFE; electronic skin; flexible tactile sensor; multi-foil approach; organic TFT;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Nanotechnology Materials and Devices Conference (NMDC), 2014 IEEE 9th
  • Conference_Location
    Aci Castello
  • Type

    conf

  • DOI
    10.1109/NMDC.2014.6997418
  • Filename
    6997418