中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Microconformal electrode-dielectric integration for flexible ultrasensitive robotic tactile sensing

文献类型:期刊论文

作者Luo, Shi2,3; Zhou, Xi2; Tang, Xinyue2; Li, Jialu2; Wei, Dacheng3; Tai, Guojun2; Chen, Zongyong1; Liao, Tingmao1; Fu, Jianting2; Wei, Dapeng2
刊名NANO ENERGY
出版日期2021-02-01
卷号80页码:10
关键词Microconformal structures Electrode-dielectric integration Capacitive pressure sensor Sensitivity Robotic tactile sensing
ISSN号2211-2855
DOI10.1016/j.nanoen.2020.105580
通讯作者Wei, Dapeng(dpwei@cigit.ac.cn) ; Yang, Jun(jyang@cigit.ac.cn)
英文摘要Flexible pressure sensors have attracted a lot of interest because of their widespread applications in healthcare, robotics, wearable smart devices, and human-machine interfaces. While microstructuring both the electrodes and dielectrics has been proven to have a significant improvement in the sensitivity and response speed of piezocapacitive sensors, the synergetic influence of microstructured electrodes and dielectrics has not been discussed yet. Herein, a flexible piezocapacitive sensor has been demonstrated with a microstructured graphene nanowalls (GNWs) electrode and a conformally microstructured dielectric layer that consists of polydimethylsiloxane (PDMS) and piezoelectric enhancer of zinc oxide (ZnO). Such microstructured assembly with piezoelectric film constructs a microconformal GNWs/PDMS/ZnO electrode-dielectric integration (MEDI), which can effectively enhance the sensitivity and the pressure-response range. The piezocapacitive sensor exhibits an ultra-high sensitivity (22.3 kPa(-1)), fast response speed (25 ms), and broad pressure range (22 kPa). The finite element analysis indicates that the polarized electric field caused by the ZnO film's piezoelectric effect greatly enhances the capacitance of the sensor. Moreover, the integration of the electrode and dielectric layer can eliminate the slippage between contiguous layers, which effectively increases the mechanical stability. Benefitting from the outstanding comprehensive performance, the potential application in robotic tactile perception has been successfully demonstrated, including object grabbing, braille recognition, and roughness detection. The MEDI in structure capacitive sensors provides a new approach to achieve high-performance E-skin, which delivers great potential applications in next-generation robotic tactile sensing.
资助项目National Natural Science Foundation of China[NSFC 61504148] ; Project of CAS Western Young Scholar, Project of Chongqing Science and Technology Bureau[cstc2020jcyj-msxmX1041] ; Project of CAS Western Young Scholar, Project of Chongqing Science and Technology Bureau[cstc2019jcyj-msxmX0574] ; Project of CAS Western Young Scholar, Project of Chongqing Science and Technology Bureau[cstc2019jscx-msxmX0081] ; Project of CAS Western Young Scholar, Project of Chongqing Science and Technology Bureau[cstc2019jscx-msxmX0024]
WOS研究方向Chemistry ; Science & Technology - Other Topics ; Materials Science ; Physics
语种英语
WOS记录号WOS:000618007800002
出版者ELSEVIER
源URL[http://119.78.100.138/handle/2HOD01W0/12949]  
专题中国科学院重庆绿色智能技术研究院
通讯作者Wei, Dapeng; Yang, Jun
作者单位1.Guizhou Nat Technol CO LTD, Guiyang 550000, Guizhou, Peoples R China
2.Chinese Acad Sci, Chongqing Inst Green & Intelligent Technol, Chongqing 400714, Peoples R China
3.Fudan Univ, Shanghai 200433, Peoples R China
推荐引用方式
GB/T 7714
Luo, Shi,Zhou, Xi,Tang, Xinyue,et al. Microconformal electrode-dielectric integration for flexible ultrasensitive robotic tactile sensing[J]. NANO ENERGY,2021,80:10.
APA Luo, Shi.,Zhou, Xi.,Tang, Xinyue.,Li, Jialu.,Wei, Dacheng.,...&Yang, Jun.(2021).Microconformal electrode-dielectric integration for flexible ultrasensitive robotic tactile sensing.NANO ENERGY,80,10.
MLA Luo, Shi,et al."Microconformal electrode-dielectric integration for flexible ultrasensitive robotic tactile sensing".NANO ENERGY 80(2021):10.

入库方式: OAI收割

来源:重庆绿色智能技术研究院

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