TY - JOUR
T1 - Recent progress in high-resolution tactile sensor array
T2 - From sensor fabrication to advanced applications
AU - Wang, Rui
AU - Hu, Shaoxiong
AU - Zhu, Wei
AU - Huang, Yue
AU - Wang, Wenhao
AU - Li, Ying
AU - Yang, Yuchen
AU - Yu, Jiajie
AU - Deng, Yuan
N1 - Publisher Copyright:
© 2023 Chinese Materials Research Society
PY - 2023/2
Y1 - 2023/2
N2 - Tactile sensors can transform the environmental stimuli into electrical signals to perceive and quantify the environmental information, which show huge application prospects. The development of bionic robots and wearable devices towards intelligence has put high demands on the performance of tactile sensor arrays. Herein, the current state-of-the-art tactile sensor arrays over recent years have been summarized, from sensor array fabrication to advanced applications. The main preparation methods of patterned array including screen printing, 3D printing, laser microprocessing, and textile technology are discussed in detail. Strategies to optimize the signal crosstalk caused by flexible high-density sensor arrays are systematically introduced from the perspective of structure design and circuit design. Furthermore, advanced tactile sensors are not limited to a single pressure sensing function, and hence the development of multimodal detection for sensors has been discussed. In order to promote the adaptability in applications, stretchable and self-powered versatile integration scheme for advanced sensing are briefly described. Then, by means of machine learning and neural networks, it is possible to deeply explore the information embedded in the tactile acquisition signal with enriched application scenarios. Finally, the current challenges and the future perspectives for flexible tactile sensor arrays towards practical use are provided.
AB - Tactile sensors can transform the environmental stimuli into electrical signals to perceive and quantify the environmental information, which show huge application prospects. The development of bionic robots and wearable devices towards intelligence has put high demands on the performance of tactile sensor arrays. Herein, the current state-of-the-art tactile sensor arrays over recent years have been summarized, from sensor array fabrication to advanced applications. The main preparation methods of patterned array including screen printing, 3D printing, laser microprocessing, and textile technology are discussed in detail. Strategies to optimize the signal crosstalk caused by flexible high-density sensor arrays are systematically introduced from the perspective of structure design and circuit design. Furthermore, advanced tactile sensors are not limited to a single pressure sensing function, and hence the development of multimodal detection for sensors has been discussed. In order to promote the adaptability in applications, stretchable and self-powered versatile integration scheme for advanced sensing are briefly described. Then, by means of machine learning and neural networks, it is possible to deeply explore the information embedded in the tactile acquisition signal with enriched application scenarios. Finally, the current challenges and the future perspectives for flexible tactile sensor arrays towards practical use are provided.
KW - Advanced application
KW - Anti-crosstalk design
KW - Fabrication
KW - Integration strategy
KW - Tactile sensor arrays
UR - https://www.scopus.com/pages/publications/85150360947
U2 - 10.1016/j.pnsc.2023.02.005
DO - 10.1016/j.pnsc.2023.02.005
M3 - 文献综述
AN - SCOPUS:85150360947
SN - 1002-0071
VL - 33
SP - 55
EP - 66
JO - Progress in Natural Science: Materials International
JF - Progress in Natural Science: Materials International
IS - 1
ER -