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Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/20414
Title: Ultrahigh Sensitive and Flexible Magnetoelectronics with Magnetic Nanocomposites: Toward an Additional Perception of Artificial Intelligence
Authors: Cai, Shu-Yi
Chang, Cheng-Han
Lin, Hung-I.
Huang, Yuan-Fu
Lin, Wei-Ju
Lin, Shih-Yao
Liou, Yi-Rou
Shen, Tien-Lin
Huang, Yen-Hsiang
Tsao, Po-Wei
Tzou, Chen-Yang
Liao, Yu-Ming
Chen, Yang-Fang
Keywords: PRESSURE SENSORS;ELECTRONIC SKIN;SOFT;DESIGN;ENERGY;KOH
Issue Date: 23-May-2018
Publisher: AMER CHEMICAL SOC
Journal Volume: 10
Journal Issue: 20
Start page/Pages: 17393-17400
Source: ACS APPL MATER INTER
Abstract: 
In recent years, flexible magnetoelectronics has attracted a great attention for its intriguing functionalities and potential applications, such as healthcare, memory, soft robots, navigation, and touchless human-machine interaction systems. Here, we provide the first attempt to demonstrate a new type of magneto-piezoresistance device, which possesses an ultrahigh sensitivity with several orders of resistance change under an external magnetic field (100 mT). In our device, Fe-Ni alloy powders are embedded in the silver nanowire-coated micropyramid polydimethylsiloxane films. Our devices can not only serve as an on/off switch but also act as a sensor that can detect different magnetic fields because of its ultrahigh sensitivity, which is very useful for the application in analog signal communication. Moreover, our devices contain several key features, including large-area and easy fabrication processes, fast response time, low working voltage, low power consumption, excellent flexibility, and admirable compatibility onto a freeform surface, which are the critical criteria for the future development of touchless human-machine interaction systems. On the basis of all of these unique characteristics, we have demonstrated a nontouch piano keyboard, instantaneous magnetic field visualization, and autonomous power system, making our new devices be integrable with magnetic field and enable to be implemented into our daily life applications with unfamiliar human senses. Our approach therefore paves a useful route for the development of wearable electronics and intelligent systems.
URI: http://scholars.ntou.edu.tw/handle/123456789/20414
ISSN: 1944-8244
DOI: 10.1021/acsami.8b04950
Appears in Collections:03 GOOD HEALTH AND WELL-BEING
07 AFFORDABLE & CLEAN ENERGY
12 RESPONSIBLE CONSUMPTION & PRODUCTION

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