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      One-dimensional organic artificial multi-synapses enabling electronic textile neural network for wearable neuromorphic applications

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          Abstract

          We developed 1D multi-synaptic device toward the development of an e-textile neutral network for wearable intelligent applications.

          Abstract

          One-dimensional (1D) devices are becoming the most desirable format for wearable electronic technology because they can be easily woven into electronic (e-) textile(s) with versatile functional units while maintaining their inherent features under mechanical stress. In this study, we designed 1D fiber-shaped multi-synapses comprising ferroelectric organic transistors fabricated on a 100-μm Ag wire and used them as multisynaptic channels in an e-textile neural network for wearable neuromorphic applications. The device mimics diverse synaptic functions with excellent reliability even under 6000 repeated input stimuli and mechanical bending stress. Various NOR-type textile arrays are formed simply by cross-pointing 1D synapses with Ag wires, where each output from individual synapse can be integrated and propagated without undesired leakage. Notably, the 1D multi-synapses achieved up to ~90 and ~70% recognition accuracy for MNIST and electrocardiogram patterns, respectively, even in a single-layer neural network, and almost maintained regardless of the bending conditions.

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          Gradient-based learning applied to document recognition

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            Fully integrated wearable sensor arrays for multiplexed in situ perspiration analysis.

            Wearable sensor technologies are essential to the realization of personalized medicine through continuously monitoring an individual's state of health. Sampling human sweat, which is rich in physiological information, could enable non-invasive monitoring. Previously reported sweat-based and other non-invasive biosensors either can only monitor a single analyte at a time or lack on-site signal processing circuitry and sensor calibration mechanisms for accurate analysis of the physiological state. Given the complexity of sweat secretion, simultaneous and multiplexed screening of target biomarkers is critical and requires full system integration to ensure the accuracy of measurements. Here we present a mechanically flexible and fully integrated (that is, no external analysis is needed) sensor array for multiplexed in situ perspiration analysis, which simultaneously and selectively measures sweat metabolites (such as glucose and lactate) and electrolytes (such as sodium and potassium ions), as well as the skin temperature (to calibrate the response of the sensors). Our work bridges the technological gap between signal transduction, conditioning (amplification and filtering), processing and wireless transmission in wearable biosensors by merging plastic-based sensors that interface with the skin with silicon integrated circuits consolidated on a flexible circuit board for complex signal processing. This application could not have been realized using either of these technologies alone owing to their respective inherent limitations. The wearable system is used to measure the detailed sweat profile of human subjects engaged in prolonged indoor and outdoor physical activities, and to make a real-time assessment of the physiological state of the subjects. This platform enables a wide range of personalized diagnostic and physiological monitoring applications.
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              Wearable biosensors for healthcare monitoring

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                Author and article information

                Journal
                Sci Adv
                Sci Adv
                SciAdv
                advances
                Science Advances
                American Association for the Advancement of Science
                2375-2548
                July 2020
                10 July 2020
                : 6
                : 28
                : eaba1178
                Affiliations
                [1 ]KU-KIST Graduate School of Converging Science and Technology, Korea University, 145 Anam-ro, Seongbuk-gu, Seoul 02841, Republic of Korea.
                [2 ]Institute of Advanced Composite Materials, Korea Institute of Science and Technology, 92 Chudong-ro, Bongdong-eup, Wanju-gun, Jeollabuk-do 55324, Republic of Korea.
                [3 ]Department of Flexible and Printable Electronics, Jeonbuk National University, 567 Baekje-daero, Deokjin-gu, Jeonju-si, Jeollabuk-do 54896, Republic of Korea.
                Author notes
                [*]

                These authors contributed equally to this work.

                [†]

                Present address: Department of Flexible and Printable Electronics, Jeonbuk National University, 567 Baekje-daero, Deokjin-gu, Jeonju-si, Jeollabuk-do 54896, Republic of Korea.

                []Corresponding author. Email: twk@ 123456jbnu.ac.kr (T.-W.K.); gunukwang@ 123456korea.ac.kr (G.W.)
                Author information
                http://orcid.org/0000-0002-0182-2044
                http://orcid.org/0000-0001-6244-4625
                http://orcid.org/0000-0002-9201-3284
                http://orcid.org/0000-0002-8356-5749
                http://orcid.org/0000-0003-2157-732X
                http://orcid.org/0000-0001-6059-0530
                Article
                aba1178
                10.1126/sciadv.aba1178
                10662591
                32937532
                88160c50-f29a-4026-b8f3-fe2c8e5416d9
                Copyright © 2020 The Authors, some rights reserved; exclusive licensee American Association for the Advancement of Science. No claim to original U.S. Government Works. Distributed under a Creative Commons Attribution NonCommercial License 4.0 (CC BY-NC).

                This is an open-access article distributed under the terms of the Creative Commons Attribution-NonCommercial license, which permits use, distribution, and reproduction in any medium, so long as the resultant use is not for commercial advantage and provided the original work is properly cited.

                History
                : 05 November 2019
                : 29 May 2020
                Funding
                Funded by: doi http://dx.doi.org/10.13039/501100003725, National Research Foundation of Korea;
                Award ID: 2019R1A2C2003704
                Funded by: doi http://dx.doi.org/10.13039/501100003725, National Research Foundation of Korea;
                Award ID: 2019R1A6A3A01095700
                Funded by: doi http://dx.doi.org/10.13039/501100003725, National Research Foundation of Korea;
                Award ID: 2020R1A2C2010163
                Funded by: Samsung Electronics;
                Funded by: the KU-KIST research fund;
                Funded by: Korea University Grant;
                Categories
                Research Article
                Research Articles
                SciAdv r-articles
                Materials Science
                Applied Sciences and Engineering
                Applied Sciences and Engineering
                Custom metadata
                Adrienne Del Mundo

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