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Wearable Electronics for Human-Machine Interfaces Enabled by New Functional Materials

Wearable Electronics for Human-Machine Interfaces Enabled by New Functional Materials
Author: Hanxiang Wu
Publisher:
Total Pages: 0
Release: 2023
Genre:
ISBN:

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Wearable electronics is a new frontier of research to bridge the gap between rigid computational units and soft tissues. Unprecedented human-machine interfaces with new functions including physical and physiological sensors and personal cooling devices are developed based on novel soft materials such as conformal polymers, semiconducting nanomaterials, and electrocaloric polymers. However, there is still distance between a new functional material and a practical device in terms of reliability, cost, encapsulation, and lifetime. This dissertation focused on design, fabrication and verification of wearable electronic devices for human-machine interfaces enabled by new functional materials. Four selected topics are presented from chapter 2 through chapter 5. Chapter 2 concerns tissue-like bioelectronics which offer an ideal means of interfacing with the body, but their implementation typically requires rigid shuttle devices that can cause additional scarring and tissue damage during implantation. To address this issue, we developed a self-softening polymer-based neural device that can record both electrochemical and neurochemical signals in vivo. The mechanically adaptive polymer is stiff at room temperature, boasting a Young's modulus of approximately 100MPa, and thus can be implanted without the need for a shuttle. Once implanted, the device becomes soft with a Young's modulus of roughly 10 kPa. A multi-modal device was created using this self-softening polymer, which combines electrophysiological recording with neurotransmitter biosensors. The device enables simultaneous recording of both electrophysiological signals and serotonin concentrations in vivo. In the field of skin-attachable electronics, debonding-on-demand (DoD) adhesives are highly sought after, as they allow for repeated usage without damaging the skin. Chapter 3 developed a simple and versatile method for fabricating biocompatible bonding/debonding bistable adhesive polymers (BAPs) that exhibit conformal adhesion at skin temperature and easy detachment at room temperature. Additionally, the potential application of BAPs in a mechanosensitive communication system is explored. The BAPs are designed by incorporating stearyl acrylate (SA) and tetradecyl acrylate (TA) into a chemically cross-linked elastomer, which undergoes a semicrystalline-to-amorphous transition between 26°C and 32°C, leading to high adhesive flowability and significant energy dissipation. An optically transparent and mechanically compliant debonding-on-demand triboelectric nanogenerator (DoD-TENG) was also fabricated using the BAP as the DoD substrate, a polydimethylsiloxane (PDMS) elastomer as the electrification layer, and an ion-conductive elastomer as the electrode. This device can serve as a human-machine interface for a self-powered drone navigation system. This work is published and cited asGao, M.1, Wu, H.1, Plamthottam, R., Xie, Z., Liu, Y., Hu, J., ... & Pei, Q. (2021). Skin temperature-triggered, debonding-on-demand sticker for a self-powered mechanosensitive communication system. Matter, 4(6), 1962-1974. Flexible and conformable transistors that incorporate semiconductive single-walled carbon nanotubes (SWNTs) have been extensively studied for biosensing applications. However, their sensing capabilities are often hampered by high electrolytic leakage currents, which negatively impact their detection abilities. While data processing can help to amplify the signals, it will also sacrifice sampling rates and leave the sensors vulnerable to fluctuations in the electrolyte solutions. To address these issues, chapter 4 introduces SWNT-based twin-transistors, where one transistor acts as a sensor and the other as a reference. Both transistors share gate and source electrodes, and all source/drain electrodes are sealed by a parylene layer to minimize electrolytic leakage. A common-source amplifier circuit generates voltage signal readouts from the sensor and reference transistors, and differential outputs enhance the signal-to-noise ratios by 92%. The arrays of twin-transistors were fabricated using microfabrication techniques, including photolithography and solution-based deposition of SWNTs, followed by transfer to a polyurethane substrate. To demonstrate glucose biosensing, glucose oxidase was immobilized onto the SWNTs in the sensor channels. This resulted in a sensor that can deliver real-time detection of glucose in human serum, exhibiting a 100% increase in normalized responses per decade of glucose concentrations between 100 [mu]M to 100 mM. The response is proportional to the cubic root of glucose concentration, indicating that the redox electrons conducted by the nanotubes in the channel length direction contribute to the sensor response. Finally, the study demonstrated a portable glucose sensing system utilizing the flexible twin-transistors. The demand for compact and flexible cooling technology has increased significantly in the thermal management of wearable electronics and personal comfort. Electrocaloric (EC) cooling holds great potential as a solution, but its low adiabatic temperature change has impeded its progress. However, chapter 5 developed a cascade EC cooling device that overcomes this bottleneck by increasing the temperature change while enhancing cooling power and efficiency. The device integrates multiple units of EC polymer elements and an electrostatic actuation mechanism that work in synergy. Each pair of adjacent EC elements function in antiphase, allowing for continuous heat flow from the heat source to the heat sink. This antiphase operation also facilitates internal charge recycling, which improves energy efficiency. By operating at the EC electric field with a 3.0 K adiabatic temperature change, a four-layer cascade device can achieve a maximum temperature lift of 8.7 K under no-load conditions. The coefficient of performance is estimated to be 9.0 at a temperature lift of 2.7 K and 10.4 at zero temperature lift. This work is published and cited asMeng, Y., Zhang, Z., Wu, H., Wu, R., Wu, J., Wang, H., & Pei, Q. (2020). A cascade electrocaloric cooling device for large temperature lift. Nature Energy, 5(12), 996-1002.


Soft Material-Enabled Electronics for Medicine, Healthcare, and Human-Machine Interfaces

Soft Material-Enabled Electronics for Medicine, Healthcare, and Human-Machine Interfaces
Author: Jae-Woong Jeong
Publisher: MDPI
Total Pages: 244
Release: 2020-03-13
Genre: Technology & Engineering
ISBN: 3039282824

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Soft material-enabled electronics offer distinct advantage, over conventional rigid and bulky devices, for numerous wearable and implantable applications. Soft materials allow for seamless integration with skin and tissues due to enhanced mechanical flexibility and stretchability. Wearable devices, such as sensors, offer continuous, real-time monitoring of biosignals and movements, which can be applied in rehabilitation and diagnostics, among other applications. Soft implantable electronics offer similar functionalities, but with improved compatibility with human tissues. Biodegradable soft implantable electronics are also being developed for transient monitoring, such as in the weeks following surgery. To further advance soft electronics, materials, integration strategies, and fabrication techniques are being developed. This paper reviews recent progress in these areas, toward the development of soft material-enabled electronics for medicine, healthcare, and human-machine interfaces.


Multimodal electronic textiles for intelligent human-machine interfaces

Multimodal electronic textiles for intelligent human-machine interfaces
Author: Xiao Wei
Publisher: OAE Publishing Inc.
Total Pages: 38
Release: 2023-05-18
Genre: Technology & Engineering
ISBN:

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Smart wearable electronic devices capable of information exchanging (such as human-machine interfaces) have developed into key carriers for the interconnection, intercommunication, and interaction between humans and machines. Multimodal electronic textiles that incorporate multifunctional sensors into daily clothing are an emerging technology to realize smart wearable electronics. This has greatly advanced human-machine interface technology by bridging the gap between wearing comfort and traditional wearable electronic devices, which will facilitate the rapid development and wide application of natural human-machine interfaces. In this article, we provide a comprehensive summary of the latest research progress on multimodal electronic textiles for intelligent human-machine interfaces. Firstly, we introduce the most representative electronic textile manufacturing strategies in terms of functional fiber preparation and multimodal textile forming. Then, we explore the multifunctional sensing capability of multimodal electronic textiles and emphasize their advanced applications in intelligent human-machine interfaces. Finally, we present new insights on the future research directions and the challenges faced in practical applications of multimodal electronic textiles.


Smart and Connected Wearable Electronics

Smart and Connected Wearable Electronics
Author: Woon-Hong Yeo
Publisher: Elsevier
Total Pages: 590
Release: 2023-11-13
Genre: Technology & Engineering
ISBN: 0323993680

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Approx.630 pages Approx.630 pages


Wearable Sensors

Wearable Sensors
Author: Edward Sazonov
Publisher: Elsevier
Total Pages: 649
Release: 2014-08-14
Genre: Technology & Engineering
ISBN: 0124186661

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Written by industry experts, this book aims to provide you with an understanding of how to design and work with wearable sensors. Together these insights provide the first single source of information on wearable sensors that would be a valuable addition to the library of any engineer interested in this field. Wearable Sensors covers a wide variety of topics associated with the development and application of various wearable sensors. It also provides an overview and coherent summary of many aspects of current wearable sensor technology. Both industry professionals and academic researchers will benefit from this comprehensive reference which contains the most up-to-date information on the advancement of lightweight hardware, energy harvesting, signal processing, and wireless communications and networks. Practical problems with smart fabrics, biomonitoring and health informatics are all addressed, plus end user centric design, ethical and safety issues. Provides the first comprehensive resource of all currently used wearable devices in an accessible and structured manner Helps engineers manufacture wearable devices with information on current technologies, with a focus on end user needs and recycling requirements Combines the expertise of professionals and academics in one practical and applied source


Artificial Organ Engineering

Artificial Organ Engineering
Author: Maria Cristina Annesini
Publisher: Springer
Total Pages: 271
Release: 2016-07-19
Genre: Technology & Engineering
ISBN: 1447164431

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Artificial organs may be considered as small-scale process plants, in which heat, mass and momentum transfer operations and, possibly, chemical transformations are carried out. This book proposes a novel analysis of artificial organs based on the typical bottom-up approach used in process engineering. Starting from a description of the fundamental physico-chemical phenomena involved in the process, the whole system is rebuilt as an interconnected ensemble of elemental unit operations. Each artificial organ is presented with a short introduction provided by expert clinicians. Devices commonly used in clinical practice are reviewed and their performance is assessed and compared by using a mathematical model based approach. Whilst mathematical modelling is a fundamental tool for quantitative descriptions of clinical devices, models are kept simple to remain focused on the essential features of each process. Postgraduate students and researchers in the field of chemical and biomedical engineering will find that this book provides a novel and useful tool for the analysis of existing devices and, possibly, the design of new ones. This approach will also be useful for medical researchers who want to get a deeper insight into the basic working principles of artificial organs.


Self-powered wearable IoT sensors as human-machine interfaces

Self-powered wearable IoT sensors as human-machine interfaces
Author: Yuan Xi
Publisher: OAE Publishing Inc.
Total Pages: 34
Release: 2023-08-01
Genre: Technology & Engineering
ISBN:

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Self-powered wearable Internet of Things (IoT) sensors have made a significant impact on human life and health in recent years. These sensors are known for their convenience, durability, affordability, and longevity, leading to substantial improvements in people’s lives. This review summarizes the development of self-powered wearable IoT sensors in recent years. Materials for self-powered wearable sensors are summarized and evaluated, including nanomaterials, flexible materials, and degradable materials. The working mode of self-powered wearable IoT sensors is analyzed, and the different principles of its physical sensing and chemical sensing are explained. Several common technologies for self-powered wearable IoT sensors are presented, such as triboelectric technology, piezoelectric technology, and machine learning. The applications of self-powered IoT wearable sensors in human-machine interfaces are reviewed. Its current shortcomings and prospects for its future development are also discussed. To conduct this review, a comprehensive literature search was performed using several electronic databases, resulting in the inclusion of 225 articles. The gathered data was extracted, synthesized, and analyzed using a thematic analysis approach. This review provides a comprehensive analysis and summary of its working mode, technologies, and applications and provides references and inspiration for related research in this field. Furthermore, this review also identifies the key directions and challenges for future research.


Human-Machine Interface

Human-Machine Interface
Author: Rishabha Malviya
Publisher: John Wiley & Sons
Total Pages: 532
Release: 2023-11-21
Genre: Computers
ISBN: 1394199910

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HUMAN-MACHINE INTERFACE The book contains the latest advances in healthcare and presents them in the frame of the Human-Machine Interface (HMI). The Human-Machine Interface (HMI) industry has witnessed the evolution from a simple push button to a modern touch-screen display. HMI is a user interface that allows humans to operate controllers for machines, systems, or instruments. Most medical procedures are improved by HMI systems, from calling an ambulance to ensuring that a patient receives adequate treatment on time. This book describes the scenario of biomedical technologies in the context of the advanced HMI, with a focus on direct brain-computer connection. The book describes several HMI tools and related techniques for analyzing, creating, controlling, and upgrading healthcare delivery systems, and provides details regarding how advancements in technology, particularly HMI, ensure ethical and fair use in patient care. Audience The target audience for this book is medical personnel and policymakers in healthcare and pharmaceutical professionals, as well as engineers and researchers in computer science and artificial intelligence.


Wearable Sensors

Wearable Sensors
Author: Edward Sazonov
Publisher: Academic Press
Total Pages: 662
Release: 2020-11-10
Genre: Technology & Engineering
ISBN: 012819247X

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Wearable Sensors: Fundamentals, Implementation and Applications has been written by a collection of experts in their field, who each provide you with an understanding of how to design and work with wearable sensors. Together these insights provide the first single source of information on wearable sensors that would be a fantastic addition to the library of any engineers working in this field. Wearable Sensors covers a wide variety of topics associated with development and applications of wearable sensors. It also provides an overview and a coherent summary of many aspects of wearable sensor technology. Both professionals in industries and academic researchers need this package of information in order to learn the overview and each specific technology at the same time. This book includes the most current knowledge on the advancement of light-weight hardware, energy harvesting, signal processing, and wireless communications and networks. Practical problems with smart fabrics, biomonitoring and health informatics are all addressed, plus end user centric design, ethical and safety issues. The new edition is completely reviewed by key figures in the field, who offer authoritative and comprehensive information on the various topics. A new feature for the second edition is the incorporation of key background information on topics to allow the less advanced user access to the field and to make the title more of an auto-didactic book for undergraduates. Provides a full revision of the first edition, providing a comprehensive and up-to-date resource of all currently used wearable devices in an accessible and structured manner Helps engineers manufacture wearable devices with information on current technologies, with a focus on end user needs and recycling requirements This book provides a fully updated overview of the many aspects of wearable sensor technology in one single volume, enabling engineers and researchers to fully comprehend the field and to identify opportunities


Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics

Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics
Author: Xing Fan
Publisher: John Wiley & Sons
Total Pages: 388
Release: 2022-03-14
Genre: Technology & Engineering
ISBN: 3527345248

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Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics Discover state-of-the-art developments in textile-based wearable and stretchable electronics from leaders in the field In Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics, renowned researchers Professor Xing Fan and his co-authors deliver an insightful and rigorous exploration of textile-based energy harvesting and storage systems. The book covers the principles of smart fibers and fabrics, as well as their fabrication methods. It introduces, in detail, several fiber- and fabric-based energy harvesting and storage devices, including photovoltaics, piezoelectrics, triboelectrics, supercapacitors, batteries, and sensing and self-powered electric fabrics. The authors also discuss expanded functions of smart fabrics, like stretchability, hydrophobicity, air permeability and color-changeability. The book includes sections on emerging electronic fibers and textiles, including stress-sensing, strain-sensing, and chemical-sensing textiles, as well as emerging self-powered electronic textiles. Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics concludes with an in-depth treatment of upcoming challenges, opportunities, and commercialization requirements for electronic textiles, providing valuable insight into a highly lucrative new commercial sector. The book also offers: A thorough introduction to the evolution from classical functional fibers to intelligent fibers and textiles An exploration of typical film deposition technologies, like dry-process film deposition and wet-process technologies for roll-to-roll device fabrication Practical discussions of the fabrication process of intelligent fibers and textiles, including the synthesis of classical functional fibers and nano/micro assembly on fiber materials In-depth examinations of energy harvesting and energy storage fibers, including photovoltaic, piezoelectric, and supercapacitor fibers Perfect for materials scientists, engineering scientists, and sensor developers, Textile-Based Energy Harvesting and Storage Devices for Wearable Electronics is also an indispensable resource for electrical engineers and professionals in the sensor industry seeking a one-stop reference for fiber- and fabric-based energy harvesting and storage systems for wearable and stretchable power sources.