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Synergistic Optimization towards the Sensitivity and Linearity of Flexible Pressure Sensor via Double Conductive Layer and Porous Micro-dome Array
Ji, B.1; Zhou, Q.1; Wu, J.2; Gao, Y.3; Wen, W.4; Zhou, B.1
2020-07-08
Source PublicationACS Applied Materials & Interfaces
ISSN1944-8244
Volume12Issue:27Pages:31021-31035
Abstract

Recently, wearable pressure sensors have attracted considerable interest in various fields such as healthcare monitoring, intelligent robots, etc. Although artificial structures or conductive materials have been well developed, the trade-off between sensitivity and linearity of pressure sensors is yet to be fully resolved by a traditional approach. Herein, from theoretical analysis to experimental design, we present the novel CPDMS/AgNWs double conductive layer (DCL) to synergistically optimize the sensitivity and linearity of piezoresistive pressure sensors. The facilely fabricated solid microdome array (SDA) is first employed as the elastomer to clarify the unrevealed working mechanism of DCL. Attributed to the synergistic effect of DCL, the DCL/SDA based sensor exhibits ultrahigh sensitivity (up to 3788.29 kPa–1) in an obviously broadened linearity range (0–6 kPa). We also demonstrated that the synergistic effect of DCL can be regulated with use of porous microdome array (PDA) to further optimize the sensing property. The linearity range can be improved up to 70 kPa while preserving the high sensitivity of 924.37 kPa–1 based on the interlocked PDA structure (IPDA), which is rarely reported in previous studies. The optimized sensitivity and linearity allow the competitive DCL/IPDA based sensor as a reliable platform to monitor kinds of physiological signals covering from low pressures (e.g., artery pulses), medium pressures (e.g., muscle expansions), to high pressures (e.g., body motions). We believe that the methodology along with the robust sensor can be of great potential for reliable healthcare monitoring and wearable electronic applications in the future.

KeywordElectronic Skin Wearable Sensor Contact Resistance Carbon Black Silver Nanowires Double Conductive Layer
DOI10.1021/acsami.0c08910
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaScience & Technology - Other Topics ; Materials Science
WOS SubjectNanoscience & Nanotechnology ; Materials Science, Multidisciplinary
WOS IDWOS:000550633400104
PublisherAMER CHEMICAL SOC, 1155 16TH ST, NW, WASHINGTON, DC 20036
The Source to ArticlePB_Publication
Scopus ID2-s2.0-85088211165
Fulltext Access
Citation statistics
Document TypeJournal article
CollectionDEPARTMENT OF PHYSICS AND CHEMISTRY
INSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Corresponding AuthorZhou, B.
Affiliation1.Joint Key Laboratory of the Ministry of Education, Institute of Applied Physics and Materials Engineering, University of Macau, Taipa, Avenida da Universidade, 999078, Macao
2.Materials Genome Institute, Shanghai University, Shanghai, 200444, China
3.Shenzhen Shineway Hi-Tech Corporation, Shenzhen, 518112, China
4.Department of Physics, Hong Kong University of Science and Technology, Clear Water Bay, Kowloon, 999077, Hong Kong
First Author AffilicationINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Corresponding Author AffilicationINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Recommended Citation
GB/T 7714
Ji, B.,Zhou, Q.,Wu, J.,et al. Synergistic Optimization towards the Sensitivity and Linearity of Flexible Pressure Sensor via Double Conductive Layer and Porous Micro-dome Array[J]. ACS Applied Materials & Interfaces, 2020, 12(27), 31021-31035.
APA Ji, B.., Zhou, Q.., Wu, J.., Gao, Y.., Wen, W.., & Zhou, B. (2020). Synergistic Optimization towards the Sensitivity and Linearity of Flexible Pressure Sensor via Double Conductive Layer and Porous Micro-dome Array. ACS Applied Materials & Interfaces, 12(27), 31021-31035.
MLA Ji, B.,et al."Synergistic Optimization towards the Sensitivity and Linearity of Flexible Pressure Sensor via Double Conductive Layer and Porous Micro-dome Array".ACS Applied Materials & Interfaces 12.27(2020):31021-31035.
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