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Single Channel Based Interference-Free and Self-Powered Human–Machine Interactive Interface Using Eigenfrequency-Dominant Mechanism
Ding, Sen1; Zhao, Dazhe2; Chen, Yongyao3; Dai, Ziyi1; Zhao, Qian1; Gao, Yibo4; Zhong, Junwen2; Luo, Jianyi3; Zhou, Bingpu1
2024-01-29
Source PublicationAdvanced Science
ISSN2198-3844
Volume11Issue:13Pages:2302782
Abstract

The recent development of wearable devices is revolutionizing the way of human–machine interaction (HMI). Nowadays, an interactive interface that carries more embedded information is desired to fulfill the increasing demand in era of Internet of Things. However, present approach normally relies on sensor arrays for memory expansion, which inevitably brings the concern of wiring complexity, signal differentiation, power consumption, and miniaturization. Herein, a one-channel based self-powered HMI interface, which uses the eigenfrequency of magnetized micropillar (MMP) as identification mechanism, is reported. When manually vibrated, the inherent recovery of the MMP causes a damped oscillation that generates current signals because of Faraday's Law of induction. The time-to-frequency conversion explores the MMP-related eigenfrequency, which provides a specific solution to allocate diverse commands in an interference-free behavior even with one electric channel. A cylindrical cantilever model is built to regulate the MMP eigenfrequencies via precisely designing the dimensional parameters and material properties. It is shown that using one device and two electrodes, high-capacity HMI interface can be realized when the magnetic micropillars (MMPs) with different eigenfrequencies have been integrated. This study provides the reference value to design the future HMI system especially for situations that require a more intuitive and intelligent communication experience with high-memory demand.

KeywordDamped Oscillation Eigenfrequency Human–machine Interaction Interference-free Self-powered
DOI10.1002/advs.202302782
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaChemistry ; Science & Technology - Other Topics ; Materials Science
WOS SubjectChemistry, Multidisciplinary ; Nanoscience & Nanotechnology ; Materials Science, Multidisciplinary
WOS IDWOS:001152066800001
PublisherWILEY, 111 RIVER ST, HOBOKEN 07030-5774, NJ
Scopus ID2-s2.0-85183449865
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Citation statistics
Document TypeJournal article
CollectionFaculty of Science and Technology
INSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
DEPARTMENT OF ELECTROMECHANICAL ENGINEERING
Corresponding AuthorZhou, Bingpu
Affiliation1.Joint Key Laboratory of the Ministry of Education, Institute of Applied Physics and Materials Engineering, University of Macau, Avenida da Universidade, Taipa, 999078, Macao
2.Department of Electromechanical Engineering, University of Macau, Avenida da Universidade, Taipa, 999078, Macao
3.Research Center of Flexible Sensing Materials and Devices, School of Applied Physics and Materials, Wuyi University, Jiangmen, 529020, China
4.Shenzhen Shineway Technology Corporation, Shenzhen, Guangdong, 518000, China
First Author AffilicationINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Corresponding Author AffilicationINSTITUTE OF APPLIED PHYSICS AND MATERIALS ENGINEERING
Recommended Citation
GB/T 7714
Ding, Sen,Zhao, Dazhe,Chen, Yongyao,et al. Single Channel Based Interference-Free and Self-Powered Human–Machine Interactive Interface Using Eigenfrequency-Dominant Mechanism[J]. Advanced Science, 2024, 11(13), 2302782.
APA Ding, Sen., Zhao, Dazhe., Chen, Yongyao., Dai, Ziyi., Zhao, Qian., Gao, Yibo., Zhong, Junwen., Luo, Jianyi., & Zhou, Bingpu (2024). Single Channel Based Interference-Free and Self-Powered Human–Machine Interactive Interface Using Eigenfrequency-Dominant Mechanism. Advanced Science, 11(13), 2302782.
MLA Ding, Sen,et al."Single Channel Based Interference-Free and Self-Powered Human–Machine Interactive Interface Using Eigenfrequency-Dominant Mechanism".Advanced Science 11.13(2024):2302782.
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