TY - JOUR
T1 - Ultra-flexible graphene/nylon/PDMS coaxial fiber-shaped multifunctional sensor
AU - Puneetha, Peddathimula
AU - Mallem, Siva Pratap Reddy
AU - Park, Sung Cheol
AU - Kim, Seoha
AU - Heo, Dong Hun
AU - Kim, Cheol Min
AU - Shim, Jaesool
AU - An, Sung Jin
AU - Lee, Dong Yeon
AU - Park, Kwi Il
N1 - Publisher Copyright:
© 2022, Tsinghua University Press.
PY - 2023/4
Y1 - 2023/4
N2 - The development of flexible and wearable devices is mainly required for tactile sensing; as such devices can adapt to complicated nonuniform surfaces, they can be applied to the human body. Nevertheless, it remains necessary to simultaneously achieve small-scale, portable, and stable developments in such devices. Thus, this work aims at fabricating a novel, lightweight, ultra-flexible, and fiber-shaped coaxial structure with a diameter of 0.51 mm using polydimethylsiloxane/graphene/nylon material, based on piezoresistive and triboelectric principles. The piezoresistive-based robotic-hand-controlled sensor thus realized exhibits a response time of 120 ms and a fast recovery time of 55 ms. Further, the piezoresistive-based sensors effectively feature whisker/joystick-guided behaviors and also sense the human finger contact. Owing to the triboelectric-based self-powered nanogenerator behavior, the resulting sensor can convert mechanical motion into electrical energy, without adversely affecting human organs. Moreover, this triboelectric-based human finger sensor can be operated under different bending modes at specific angles. Notably, this multifunctional sensor is cost-effective and suitable for various applications, including robotic-hand-controlled operations in medical surgery, whisker/joystick motions in lightweight drone technology, and navigation with high-sensitivity components. [Figure not available: see fulltext.].
AB - The development of flexible and wearable devices is mainly required for tactile sensing; as such devices can adapt to complicated nonuniform surfaces, they can be applied to the human body. Nevertheless, it remains necessary to simultaneously achieve small-scale, portable, and stable developments in such devices. Thus, this work aims at fabricating a novel, lightweight, ultra-flexible, and fiber-shaped coaxial structure with a diameter of 0.51 mm using polydimethylsiloxane/graphene/nylon material, based on piezoresistive and triboelectric principles. The piezoresistive-based robotic-hand-controlled sensor thus realized exhibits a response time of 120 ms and a fast recovery time of 55 ms. Further, the piezoresistive-based sensors effectively feature whisker/joystick-guided behaviors and also sense the human finger contact. Owing to the triboelectric-based self-powered nanogenerator behavior, the resulting sensor can convert mechanical motion into electrical energy, without adversely affecting human organs. Moreover, this triboelectric-based human finger sensor can be operated under different bending modes at specific angles. Notably, this multifunctional sensor is cost-effective and suitable for various applications, including robotic-hand-controlled operations in medical surgery, whisker/joystick motions in lightweight drone technology, and navigation with high-sensitivity components. [Figure not available: see fulltext.].
KW - extremely lightweight
KW - human-machine
KW - piezoresistive/triboelectric sensor
KW - ultra-flexible
KW - whisker
UR - https://www.scopus.com/pages/publications/85146043753
U2 - 10.1007/s12274-022-5235-0
DO - 10.1007/s12274-022-5235-0
M3 - Article
AN - SCOPUS:85146043753
SN - 1998-0124
VL - 16
SP - 5541
EP - 5547
JO - Nano Research
JF - Nano Research
IS - 4
ER -