TY - JOUR
T1 - A transparent bending-insensitive pressure sensor
AU - Lee, Sungwon
AU - Reuveny, Amir
AU - Reeder, Jonathan
AU - Lee, Sunghoon
AU - Jin, Hanbit
AU - Liu, Qihan
AU - Yokota, Tomoyuki
AU - Sekitani, Tsuyoshi
AU - Isoyama, Takashi
AU - Abe, Yusuke
AU - Suo, Zhigang
AU - Someya, Takao
N1 - Publisher Copyright:
© 2016 Macmillan Publishers Limited.
PY - 2016/5/1
Y1 - 2016/5/1
N2 - Measuring small normal pressures is essential to accurately evaluate external stimuli in curvilinear and dynamic surfaces such as natural tissues. Usually, sensitive and spatially accurate pressure sensors are achieved through conformal contact with the surface; however, this also makes them sensitive to mechanical deformation (bending). Indeed, when a soft object is pressed by another soft object, the normal pressure cannot be measured independently from the mechanical stress. Here, we show a pressure sensor that measures only the normal pressure, even under extreme bending conditions. To reduce the bending sensitivity, we use composite nanofibres of carbon nanotubes and graphene. Our simulations show that these fibres change their relative alignment to accommodate bending deformation, thus reducing the strain in individual fibres. Pressure sensitivity is maintained down to a bending radius of 80μm. To test the suitability of our sensor for soft robotics and medical applications, we fabricated an integrated sensor matrix that is only 2μm thick. We show real-time (response time of ∼20ms), large-area, normal pressure monitoring under different, complex bending conditions.
AB - Measuring small normal pressures is essential to accurately evaluate external stimuli in curvilinear and dynamic surfaces such as natural tissues. Usually, sensitive and spatially accurate pressure sensors are achieved through conformal contact with the surface; however, this also makes them sensitive to mechanical deformation (bending). Indeed, when a soft object is pressed by another soft object, the normal pressure cannot be measured independently from the mechanical stress. Here, we show a pressure sensor that measures only the normal pressure, even under extreme bending conditions. To reduce the bending sensitivity, we use composite nanofibres of carbon nanotubes and graphene. Our simulations show that these fibres change their relative alignment to accommodate bending deformation, thus reducing the strain in individual fibres. Pressure sensitivity is maintained down to a bending radius of 80μm. To test the suitability of our sensor for soft robotics and medical applications, we fabricated an integrated sensor matrix that is only 2μm thick. We show real-time (response time of ∼20ms), large-area, normal pressure monitoring under different, complex bending conditions.
UR - http://www.scopus.com/inward/record.url?scp=84955575165&partnerID=8YFLogxK
U2 - 10.1038/nnano.2015.324
DO - 10.1038/nnano.2015.324
M3 - Article
C2 - 26809055
AN - SCOPUS:84955575165
SN - 1748-3387
VL - 11
SP - 472
EP - 478
JO - Nature Nanotechnology
JF - Nature Nanotechnology
IS - 5
ER -