TY - JOUR
T1 - Micro-Nano Processing of Active Layers in Flexible Tactile Sensors via Template Methods
T2 - A Review
AU - Niu, Hongsen
AU - Zhang, Huiyun
AU - Yue, Wenjing
AU - Gao, Song
AU - Kan, Hao
AU - Zhang, Chunwei
AU - Zhang, Congcong
AU - Pang, Jinbo
AU - Lou, Zheng
AU - Wang, Lili
AU - Li, Yang
AU - Liu, Hong
AU - Shen, Guozhen
N1 - Publisher Copyright:
© 2021 Wiley-VCH GmbH
PY - 2021/10/14
Y1 - 2021/10/14
N2 - Template methods are regarded as an important method for micro-nano processing in the active layer of flexible tactile sensors. These template methods use physical/chemical processes to introduce micro-nano structures on the active layer, which improves many properties including sensitivity, response/recovery time, and detection limit. However, since the processing process and applicable conditions of the template method have not yet formed a perfect system, the development and commercialization of flexible tactile sensors based on the template method are still at a relatively slow stage. Despite the above obstacles, advances in microelectronics, materials science, nanoscience, and other disciplines have laid the foundation for various template methods, enabling the continuous development of flexible tactile sensors. Therefore, a comprehensive and systematic review of flexible tactile sensors based on the template method is needed to further promote progress in this field. Here, the unique advantages and shortcomings of various template methods are summarized in detail and discuss the research progress and challenges in this field. It is believed that this review will have a significant impact on many fields of flexible electronics, which is beneficial to promote the cross-integration of multiple fields and accelerate the development of flexible electronic devices.
AB - Template methods are regarded as an important method for micro-nano processing in the active layer of flexible tactile sensors. These template methods use physical/chemical processes to introduce micro-nano structures on the active layer, which improves many properties including sensitivity, response/recovery time, and detection limit. However, since the processing process and applicable conditions of the template method have not yet formed a perfect system, the development and commercialization of flexible tactile sensors based on the template method are still at a relatively slow stage. Despite the above obstacles, advances in microelectronics, materials science, nanoscience, and other disciplines have laid the foundation for various template methods, enabling the continuous development of flexible tactile sensors. Therefore, a comprehensive and systematic review of flexible tactile sensors based on the template method is needed to further promote progress in this field. Here, the unique advantages and shortcomings of various template methods are summarized in detail and discuss the research progress and challenges in this field. It is believed that this review will have a significant impact on many fields of flexible electronics, which is beneficial to promote the cross-integration of multiple fields and accelerate the development of flexible electronic devices.
KW - artificial intelligence
KW - micro-nano processing
KW - micro-nano structure
KW - sensing array
KW - tactile sensors
KW - template method
UR - http://www.scopus.com/inward/record.url?scp=85109413123&partnerID=8YFLogxK
U2 - 10.1002/smll.202100804
DO - 10.1002/smll.202100804
M3 - Review article
C2 - 34240560
AN - SCOPUS:85109413123
SN - 1613-6810
VL - 17
JO - Small
JF - Small
IS - 41
M1 - 2100804
ER -