TY - JOUR
T1 - Pressure Sensor Based on a Lumpily Pyramidal Vertical Graphene Film with a Broad Sensing Range and High Sensitivity
AU - Ma, Yifei
AU - Zhao, Ke
AU - Han, Jiemin
AU - Han, Bingkang
AU - Wang, Mei
AU - Tong, Zhaomin
AU - Suhr, Jonghwan
AU - Xiao, Liantuan
AU - Jia, Suotang
AU - Chen, Xuyuan
N1 - Publisher Copyright:
© 2023 American Chemical Society.
PY - 2023/3/15
Y1 - 2023/3/15
N2 - Wearable sensors are vital for the development of electronic skins to improve health monitoring, robotic tactile sensing, and artificial intelligence. Active materials and the construction of microstructures in the sensitive layer are the dominating approaches to improve the performance of pressure sensors. However, it is still a challenge to simultaneously achieve a sensor with a high sensitivity and a wide detection range. In this work, using three-dimensional (3D) vertical graphene (VG) as an active material, in combination with micropyramid arrays and lumpy holders, the stress concentration effects are generated in nano-, micro-, and macroscales. Therefore, the lumpily pyramidal VG film-based pressure sensor (LPV sensor) achieves an ultrahigh sensitivity (131.36 kPa-1) and a wide response range (0.1-100 kPa). Finite element analysis demonstrates that the stress concentration effects are enhanced by the micropyramid arrays and lumpy structures in micro- and macroscales, respectively. Finally, the LPV pressure sensors are tested in practical applications, including wearable health monitoring and force feedback of robotic tactile sensing.
AB - Wearable sensors are vital for the development of electronic skins to improve health monitoring, robotic tactile sensing, and artificial intelligence. Active materials and the construction of microstructures in the sensitive layer are the dominating approaches to improve the performance of pressure sensors. However, it is still a challenge to simultaneously achieve a sensor with a high sensitivity and a wide detection range. In this work, using three-dimensional (3D) vertical graphene (VG) as an active material, in combination with micropyramid arrays and lumpy holders, the stress concentration effects are generated in nano-, micro-, and macroscales. Therefore, the lumpily pyramidal VG film-based pressure sensor (LPV sensor) achieves an ultrahigh sensitivity (131.36 kPa-1) and a wide response range (0.1-100 kPa). Finite element analysis demonstrates that the stress concentration effects are enhanced by the micropyramid arrays and lumpy structures in micro- and macroscales, respectively. Finally, the LPV pressure sensors are tested in practical applications, including wearable health monitoring and force feedback of robotic tactile sensing.
KW - broad sensing range
KW - high sensitivity
KW - micropyramid arrays
KW - stress concentration effect
KW - vertical graphene
UR - https://www.scopus.com/pages/publications/85149468252
U2 - 10.1021/acsami.3c01175
DO - 10.1021/acsami.3c01175
M3 - Article
C2 - 36857658
AN - SCOPUS:85149468252
SN - 1944-8244
VL - 15
SP - 13813
EP - 13821
JO - ACS Applied Materials and Interfaces
JF - ACS Applied Materials and Interfaces
IS - 10
ER -