Through-Layer Buckle Wavelength-Gradient Design for the Coupling of High Sensitivity and Stretchability in a Single Strain Sensor

被引:32
作者
He, Tengyu [1 ,3 ]
Lin, Chucheng [2 ]
Shi, Liangjing [1 ]
Wang, Ranran [1 ]
Sun, Jing [1 ]
机构
[1] Chinese Acad Sci, Shanghai Inst Ceram, State Key Lab High Performance Ceram & Superfine, Shanghai 200050, Peoples R China
[2] Chinese Acad Sci, Shanghai Inst Ceram, Anal & Testing Ctr Inorgan Mat, Shanghai 200050, Peoples R China
[3] Univ Chinese Acad Sci, 19 A Yuquan Rd, Beijing 100049, Peoples R China
关键词
stretchable; wearable; strain sensor; graphene; gradient; buckle; crack; HUMAN-MOTION DETECTION; RUBBER COMPOSITES; ELECTRONIC SKIN; TRANSPARENT; DEVICES; FILMS; ELASTOMERS; NANOTUBES; DIAGNOSIS; PRESSURE;
D O I
10.1021/acsami.7b17975
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Recent years have witnessed a breathtaking development of wearable strain sensors. Coupling high sensitivity and stretchability in a strain sensor is greatly desired by emerging wearable applications but remains a big challenge. To tackle this issue, a through-layer buckle wavelength-gradient design is proposed and a facile and universal fabrication strategy is demonstrated to introduce such a gradient into the sensing film with multilayered sensing units. Following this strategy, strain sensors are fabricated using graphene woven fabrics (GWFs) as sensing units, which exhibit highly tunable electromechanical performances. Specifically, the sensor with 10-layer GWFs has a gauge factor (GF) of 2996 at a maximum strain of 242.74% and an average GF of 327. It also exhibits an extremely low minimum detection limit of 0.02% strain, a fast signal response of less than 90 ms, and a high cyclic durability through more than 10 000 cycling test. Such excellent performances qualify it in accurately monitoring full-range human activities, ranging from subtle stimuli (e.g., pulse, respiration, and voice recognition) to vigorous motions (finger bending, walking, jogging, and jumping). The combination of experimental observations and modeling study shows that the predesigned through-layer buckle wavelength gradient leads to a layer-by-layer crack propagation process, which accounts for the underlying working mechanism. Modeling study shows a great potential for further improvement of sensing performances by adjusting fabrication parameters such as layers of sensing units (n) and step pre-strain (epsilon(sp)). For one thing, when epsilon(sp) is fixed, the maximum sensing strain could be adjusted from >240% (n = 10) to >450% (n = 15) and >1200% (n = 20). For the other, when n is fixed, the maximum sensing strain could be adjusted from >240% (epsilon(sp) = 13.2%) to >400% (epsilon(sp) = 18%) and >800% (epsilon(sp) = 25%).
引用
收藏
页码:9653 / 9662
页数:10
相关论文
共 69 条
[51]   Silk-Molded Flexible, Ultrasensitive, and Highly Stable Electronic Skin for Monitoring Human Physiological Signals [J].
Wang, Xuewen ;
Gu, Yang ;
Xiong, Zuoping ;
Cui, Zheng ;
Zhang, Ting .
ADVANCED MATERIALS, 2014, 26 (09) :1336-1342
[52]   Flexible electrically resistive-type strain sensors based on reduced graphene oxide-decorated electrospun polymer fibrous mats for human motion monitoring [J].
Wang, Yalong ;
Hao, Ji ;
Huang, Zhenqi ;
Zheng, Guoqiang ;
Dai, Kun ;
Liu, Chuntai ;
Shen, Changyu .
CARBON, 2018, 126 :360-371
[53]   Polyurethane/Cotton/Carbon Nanotubes Core-Spun Yarn as High Reliability Stretchable Strain Sensor for Human Motion Detection [J].
Wang, Zifeng ;
Huang, Yan ;
Sun, Jinfeng ;
Huang, Yang ;
Hu, Hong ;
Jiang, Ruijuan ;
Gai, Weiming ;
Li, Guangming ;
Zhi, Chunyi .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (37) :24837-24843
[54]   Epidermal devices for noninvasive, precise, and continuous mapping of macrovascular and microvascular blood flow [J].
Webb, R. Chad ;
Ma, Yinji ;
Krishnan, Siddharth ;
Li, Yuhang ;
Yoon, Stephen ;
Guo, Xiaogang ;
Feng, Xue ;
Shi, Yan ;
Seidel, Miles ;
Cho, Nam Heon ;
Kurniawan, Jonas ;
Ahad, James ;
Sheth, Niral ;
Kim, Joseph ;
Taylor, James G. ;
Darlington, Tom ;
Chang, Ken ;
Huang, Weizhong ;
Ayers, Joshua ;
Gruebele, Alexander ;
Pielak, Rafal M. ;
Slepian, Marvin J. ;
Huang, Yonggang ;
Gorbach, Alexander M. ;
Rogers, John A. .
SCIENCE ADVANCES, 2015, 1 (09)
[55]  
Webb RC, 2013, NAT MATER, V12, P938, DOI [10.1038/NMAT3755, 10.1038/nmat3755]
[56]   Ultrahigh Sensitive Piezotronic Strain Sensors Based on a ZnSnO3 Nanowire/Microwire [J].
Wu, Jyh Ming ;
Chen, Cheng-Ying ;
Zhang, Yan ;
Chen, Kuan-Hsueh ;
Yang, Ya ;
Hu, Youfan ;
He, Jr-Hau ;
Wang, Zhong Lin .
ACS NANO, 2012, 6 (05) :4369-4374
[57]   High-Strain Sensors Based on ZnO Nanowire/Polystyrene Hybridized Flexible Films [J].
Xiao, Xu ;
Yuan, Longyan ;
Zhong, Junwen ;
Ding, Tianpeng ;
Liu, Yu ;
Cai, Zhixiang ;
Rong, Yaoguang ;
Han, Hongwei ;
Zhou, Jun ;
Wang, Zhong Lin .
ADVANCED MATERIALS, 2011, 23 (45) :5440-+
[58]  
Yamada T, 2011, NAT NANOTECHNOL, V6, P296, DOI [10.1038/nnano.2011.36, 10.1038/NNANO.2011.36]
[59]   Highly Stretchable, Ultrasensitive, and Wearable Strain Sensors Based on Facilely Prepared Reduced Graphene Oxide Woven Fabrics in an Ethanol Flame [J].
Yin, Biao ;
Wen, Yanwei ;
Hong, Tao ;
Xie, Zhongshuai ;
Yuan, Guoliang ;
Ji, Qingmin ;
Jia, Hongbing .
ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (37) :32054-32064
[60]   Ultraflexible organic photonic skin [J].
Yokota, Tomoyuki ;
Zalar, Peter ;
Kaltenbrunner, Martin ;
Jinno, Hiroaki ;
Matsuhisa, Naoji ;
Kitanosako, Hiroki ;
Tachibana, Yutaro ;
Yukita, Wakako ;
Koizumi, Mari ;
Someya, Takao .
SCIENCE ADVANCES, 2016, 2 (04)